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Max Planck

"Planck" redirects here. For other uses, seePlanck (disambiguation).Not to be confused withMax Blanck.

Max Karl Ernst Ludwig Planck (/ˈplæŋk/;[2]German:[maksˈplaŋk];[3] 23 April 1858 – 4 October 1947) was a Germantheoretical physicist whose discovery of energyquanta won him theNobel Prize in Physics in 1918.[4]

Max Planck
Planck in 1938
Born
Max Karl Ernst Ludwig Planck

(1858-04-23)23 April 1858
Died4 October 1947(1947-10-04) (aged 89)
Göttingen, Germany[a]
EducationUniversity of Munich (PhD, 1879)
University of Berlin
Known forQuantum theory and
See full List
Spouses
Children5
Awards
Scientific career
FieldsPhysics
Institutions
ThesisÜber den zweiten Hauptsatz der mechanischen Wärmetheorie (On the Second Principles of Mechanical Heat Theory) (1879)
Doctoral advisor
Doctoral students
Other notable students
Signature

Planck made many substantial contributions to theoretical physics, but his fame as a physicist rests primarily on his role as the originator ofquantum theory and one of the founders ofmodern physics,[5][6] which revolutionized understanding ofatomic andsubatomic processes. He is known for thePlanck constant, which is of foundational importance for quantum physics, and which he used to derive a set ofunits, today calledPlanck units, expressed only in terms of fundamentalphysical constants.

Planck was twice president of the German scientific institutionKaiser Wilhelm Society. In 1948, it was renamed theMax Planck Society (Max-Planck-Gesellschaft) and nowadays includes 83 institutions representing a wide range of scientific directions.

Early life and education

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Planck came from a traditional, intellectual family. His paternal great-grandfather and grandfather were both theology professors inGöttingen; his father was a law professor at theUniversity of Kiel andMunich. One of his uncles was also a judge.[7]

Planck was born in 1858 inKiel,Holstein (nowSchleswig-Holstein), to Johann Julius Wilhelm Planck and his second wife, Emma Patzig. He was baptized with the name ofKarl Ernst Ludwig Marx Planck; of his given names,Marx was indicated as the"appellation name".[8] However, by the age of ten he signed with the nameMax and used this for the rest of his life.[9]

He was the sixth child in the family, though two of his siblings were from his father's first marriage. War was common during Planck's early years and among his earliest memories was the marching ofPrussian andAustrian troops into Kiel during theSecond Schleswig War in 1864.[7] In 1867 the family moved toMunich, and Planck enrolled in the Maximiliansgymnasium school. There, his mathematical talents emerged early[10][11] and he later came under the tutelage of Hermann Müller, a mathematician who took an interest in the youth, and taught himastronomy andmechanics as well asmathematics. It was from Müller that Planck first learned the principle of conservation of energy. Planck graduated early, at age 17.[12] This is how Planck first came in contact with the field of physics.

Planck was gifted when it came tomusic. He took singing lessons and played piano, organ and cello, and composed songs and operas. However, instead of music he chose to studyphysics.

Planck enrolled at theUniversity of Munich in 1874. Under professorPhilipp von Jolly's supervision, Planck performed the only experiments of his scientific career, studying thediffusion ofhydrogen through heatedplatinum, but transferred totheoretical physics. Jolly advised Planck against going into theoretical physics. Planck recalls that in 1878, Jolly argued that physics was almost complete, being a "highly developed, nearly fully matured science, that through the crowning achievement of the discovery of the principle of conservation of energy will arguably soon take its final stable form".[13]

In 1877, he went to theFriedrich Wilhelms University in Berlin for a year of study with physicistsHermann von Helmholtz andGustav Kirchhoff and mathematicianKarl Weierstrass. He wrote that Helmholtz was never quite prepared, spoke slowly, miscalculated endlessly, and bored his listeners, while Kirchhoff spoke in carefully prepared lectures which were dry and monotonous. He soon became close friends with Helmholtz. While there he undertook a program of mostly self-study ofRudolf Clausius's writings, which led him to choosethermodynamics as his field.

In October 1878, Planck passed his qualifying exams and in February 1879 defended his dissertationÜber den zweiten Hauptsatz der mechanischen Wärmetheorie (On the Second Law of Mechanical Heat Theory). He briefly taught mathematics and physics at his former school in Munich.

By the year 1880, Planck had obtained the two highest academic degrees offered in Europe. The first was a doctorate degree after he completed his paper detailing his research and theory of thermodynamics.[7] He then presented his thesis calledGleichgewichtszustände isotroper Körper in verschiedenen Temperaturen (Equilibrium states of isotropic bodies at different temperatures), which earned him ahabilitation.

Career

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Planck in 1878

With the completion of his habilitation thesis, Planck became an unpaidPrivatdozent (German academic rank comparable to lecturer/assistant professor) in Munich, waiting until he was offered an academic position. Although he was initially ignored by the academic community, he furthered his work on the field ofheat theory and discovered one after another the samethermodynamical formalism asGibbs without realizing it. Clausius's ideas onentropy occupied a central role in his work.

In April 1885, theUniversity of Kiel appointed Planck as associate professor oftheoretical physics. Further work on entropy and its treatment, especially as applied inphysical chemistry, followed. He published hisTreatise on Thermodynamics in 1897.[14] He proposed a thermodynamic basis forSvante Arrhenius's theory ofelectrolyticdissociation.

In 1889, he was named the successor to Kirchhoff's position at theFriedrich-Wilhelms-Universität in Berlin[15] – presumably thanks to Helmholtz's intercession – and by 1892 became a full professor. In 1907 Planck was offeredLudwig Boltzmann's position inVienna, but turned it down to stay in Berlin. During 1909, as a University of Berlin professor, he was invited to become theErnest Kempton Adams Lecturer in Theoretical Physics atColumbia University inNew York City. A series of his lectures were translated and co-published by Columbia University professorA. P. Wills.[16] He was elected to theAmerican Academy of Arts and Sciences in 1914.[17] He retired from Berlin on 10 January 1926,[18] and was succeeded byErwin Schrödinger.[19] He was elected to the United StatesNational Academy of Sciences in 1926 and theAmerican Philosophical Society in 1933.[20][21]

Professor at Berlin University

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As a professor at theFriedrich-Wilhelms-Universität in Berlin, Planck joined the local Physical Society. He later wrote about this time: "In those days I was essentially the only theoretical physicist there, whence things were not so easy for me, because I started mentioning entropy, but this was not quite fashionable, since it was regarded as a mathematical spook".[22] Thanks to his initiative, the various local Physical Societies of Germany merged in 1898 to form the German Physical Society (Deutsche Physikalische Gesellschaft, DPG); from 1905 to 1909 Planck was the president.

 
Plaque at theHumboldt University of Berlin: "Max Planck, discoverer of the elementary quantum of actionh, taught in this building from 1889 to 1928."

Planck started a six-semester course of lectures on theoretical physics, "dry, somewhat impersonal"[citation needed] according toLise Meitner, "using no notes, never making mistakes, never faltering; the best lecturer I ever heard"[citation needed] according to an English participant,James R. Partington, who continues: "There were always many standing around the room. As the lecture-room was well heated and rather close, some of the listeners would from time to time drop to the floor, but this did not disturb the lecture."[citation needed] Planck did not establish an actual "school"; the number of his graduate students was only about 20, among them:[citation needed]

Entropy

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Thermodynamics, also known as the "mechanical theory of heat" at the end of the 19th century, had emerged at the beginning of this century from an attempt to understand the functioning of steam engines and to improve their efficiency. In the 1840s, several researchers independently discovered and formulated the law of conservation of energy, which is now also known as thefirst law of thermodynamics. In 1850,Rudolf Clausius formulated the so-calledsecond law of thermodynamics, which states that a voluntary (or spontaneous) transfer of energy is only possible from a warmer to a colder body, but not vice versa. In England at this timeWilliam Thomson came to the same conclusion.

Clausius generalized his formulation further and further and came up with a new formulation in 1865. To this end, he introduced the concept ofentropy, which he defined as a measure of the reversible supply of heat in relation to the absolute temperature.

The new formulation of the second law, which is still valid today, was: "Entropy can be created, but never destroyed". Clausius, whose work Planck read as a young student during his stay in Berlin, successfully applied this new law of nature to mechanical, thermoelectric and chemical processes.

In his dissertation in 1879, Planck summarized Clausius' writings, pointing out contradictions and inaccuracies in their formulation and then clarifying them. In addition, he generalized the validity of the second law to all processes in nature; Clausius had limited its application to reversible processes and thermal processes. Furthermore, Planck dealt intensively with the new concept of entropy and emphasized that entropy is not only a property of a physical system, but at the same time a measure of the irreversibility of a process: If entropy is generated in a process, it is irreversible, since entropy cannot be destroyed according to the second law. In reversible processes, the entropy remains constant. He presented this fact in detail in 1887 in a series of treatises entitled "On the Principle of the Increase of Entropy".[24]

In his study of the concept of entropy, Planck did not follow the molecular, probabilistic interpretation that prevailed at the time, as these do not provide absolute proof of universality. Instead, he pursued a phenomenological approach and was also skeptical of atomism. Even though he later abandoned this attitude in the course of his work on the law of radiation, his early work impressively shows the possibilities of thermodynamics in solving concrete physicochemical problems.[25][26]

Planck's understanding of entropy included the realization that the maximum of entropy corresponds to the equilibrium state. The accompanying conclusion that knowledge of the Entropy allows all laws of thermodynamic equilibrium states to be derived corresponds to the modern understanding of such states. Planck therefore chose equilibrium processes as his research focus and, based on his habilitation thesis, researched the coexistence of aggregate states and the equilibrium of gas reactions, for example. This work on the frontier of chemical thermodynamics also received great attention due to the rapidly expanding chemical work at that time.

Independently of Planck,Josiah Willard Gibbs had also discovered almost all the knowledge Planck gained about the properties of physicochemical equilibria and published them from 1876 onwards. Planck was unaware of these essays, and they did not appear in German until 1892. However, both scientists approached the topic in different ways, while Planck dealt with irreversible processes, Gibbs looked at equilibria. This approach was finally able to prevail because of its simplicity, but Planck's approach is attributed the greater universality.[27]

Black-body radiation

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Planck in 1901

In 1894, Planck turned his attention to the problem ofblack-body radiation. The problem had been stated by Kirchhoff in 1859: "how does the intensity of the electromagnetic radiation emitted by ablack body (a perfect absorber, also known as a cavity radiator) depend on thefrequency of the radiation (i.e., the color of the light) and the temperature of the body?". The question had been explored experimentally, but no theoretical treatment had agreed with the experimentally observed evidence.Wilhelm Wien proposedWien's law, which correctly predicted the behaviour at high frequencies, but failed at low frequencies. TheRayleigh–Jeans law, another approach to the problem, agreed with experimental results at low frequencies, but created what was later known as the "ultraviolet catastrophe" at high frequencies, as predicted byclassical physics. However, contrary to many textbooks, this was not a motivation for Planck.[28]

Planck's first proposed solution to the problem in 1899 followed from what he called the "principle of elementary disorder", which allowed him to derive Wien's law from a number of assumptions about theentropy of an ideal oscillator, creating what was referred to as the Wien–Planck law. Soon, however, it was found that experimental evidence did not confirm the new law at all, to Planck's frustration. He revised his approach and now derived the first version of the famousPlanck black-body radiation law, which described clearly the experimentally observed black-body spectrum. It was first proposed in a meeting of the DPG on 19 October 1900 and published in 1901. (This first derivation did not include energy quantisation, and did not usestatistical mechanics, to which he held an aversion.) In November 1900 Planck revised this first version, now relying onBoltzmann's statistical interpretation of thesecond law of thermodynamics as a way of gaining a more fundamental understanding of the principles behind his radiation law. Planck was deeply suspicious of the philosophical and physical implications of such an interpretation of Boltzmann's approach; thus his recourse to them was, as he later put it, "an act of despair ... I was ready to sacrifice any of my previous convictions about physics".[28]

The central assumption behind his new derivation, presented to the DPG on 14 December 1900, was the supposition, now known as thePlanck postulate, that electromagnetic energy could be emitted only inquantized form, in other words, the energy could only be a multiple of an elementary unit:

E=hν{\displaystyle E=h\nu } 

whereh is thePlanck constant, also known as Planck's action quantum (introduced already in 1899), andν is the frequency of the radiation. Note that the elementary units of energy discussed here are represented by and not simply byν. Physicists now call these quanta photons, and a photon of frequencyν will have its own specific and unique energy. The total energy at that frequency is then equal to multiplied by the number of photons at that frequency.

 
Planck in 1918, the year he was awarded theNobel Prize in Physics for his work onquantum theory

At first Planck considered that quantisation was only "a purely formal assumption ... actually I did not think much about it ..."; nowadays this assumption, incompatible withclassical physics, is regarded as the birth ofquantum physics and the greatest intellectual accomplishment of Planck's career. (Boltzmann had been discussing in a theoretical paper in 1877 the possibility that the energy states of a physical system could be discrete). The discovery of the Planck constant enabled him to define a new universal set ofphysical units (such as the Planck length and the Planck mass), all based on fundamental physical constants, upon which much of quantum theory is based. In a discussion with his son in December 1918 Planck described his discovery as 'a discovery of the first rank, comparable perhaps only to the discoveries of Newton'.[29] In recognition of Planck's fundamental contribution to a new branch of physics, he was awarded the Nobel Prize in Physics for 1918; (he received the award in 1919).[30][31]

Subsequently, Planck tried to grasp the meaning of energy quanta, but to no avail. "My unavailing attempts to somehow reintegrate the action quantum into classical theory extended over several years and caused me much trouble." Even several years later, other physicists such asRayleigh,Jeans, andLorentz set the Planck constant to zero in order to align with classical physics, but Planck knew well that this constant had a precise nonzero value. "I am unable to understand Jeans' stubbornness – he is an example of a theoretician as should never be existing, the same asHegel was for philosophy. So much the worse for the facts if they don't fit."[32]

Max Born wrote about Planck: "He was, by nature, a conservative mind; he had nothing of the revolutionary and was thoroughly skeptical about speculations. Yet his belief in the compelling force of logical reasoning from facts was so strong that he did not flinch from announcing the most revolutionary idea which ever has shaken physics."[1]

Einstein and the theory of relativity

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In 1905, the three epochal papers byAlbert Einstein were published in the journalAnnalen der Physik. Planck was among the few who immediately recognized the significance of thespecial theory of relativity. Thanks to his influence, this theory was soon widely accepted in Germany. Planck also contributed considerably to extend the special theory of relativity. For example, he recast the theory in terms of classicalaction.[33]

Einstein's hypothesis of lightquanta (photons), based onHeinrich Hertz's 1887 discovery (and further investigation byPhilipp Lenard) of thephotoelectric effect, was initially rejected by Planck. He was unwilling to discard completelyMaxwell's theory ofelectrodynamics. "The theory of light would be thrown back not by decades, but by centuries, into the age whenChristiaan Huygens dared to fight against the mighty emission theory ofIsaac Newton ..."[34]

In 1910, Einstein pointed out the anomalous behavior ofspecific heat at low temperatures as another example of a phenomenon which defies explanation by classical physics. Planck andWalther Nernst, seeking to clarify the increasing number of contradictions, organized the FirstSolvay Conference (Brussels 1911). At this meeting Einstein was able to convince Planck.

Meanwhile, Planck had been appointed dean of Berlin University, whereby it was possible for him to call Einstein to Berlin and establish a new professorship for him (1914). Soon the two scientists became close friends and met frequently to play music together.

First World War

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At the onset of theFirst World War Planck endorsed the general excitement of the public, writing that, "Besides much that is horrible, there is also much that is unexpectedly great and beautiful: the smooth solution of the most difficult domestic political problems by the unification of all parties (and) ... the extolling of everything good and noble."[35][36] Planck also signed the infamous "Manifesto of the 93 intellectuals", a pamphlet of polemic war propaganda (while Einstein retained a strictly pacifistic attitude which almost led to his imprisonment, only being spared thanks to hisSwiss citizenship).

In 1915, when Italy was still a neutral power, Planck voted successfully for a scientific paper from Italy, which received a prize from thePrussian Academy of Sciences, where Planck was one of four permanent presidents.

Post-war and the Weimar Republic

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In the turbulent post-war years, Planck, now the highest authority of German physics, issued the slogan "persevere and continue working" to his colleagues.

In October 1920, he andFritz Haber established theNotgemeinschaft der Deutschen Wissenschaft (Emergency Organization of German Science), aimed at providing financial support for scientific research. A considerable portion of the money the organization would distribute was raised abroad.

Planck held leading positions at Berlin University, the Prussian Academy of Sciences, the German Physical Society, and theKaiser Wilhelm Society (which became theMax Planck Society in 1948). During this time economic conditions in Germany were such that he was hardly able to conduct research. In 1926, Planck became a foreign member of theRoyal Netherlands Academy of Arts and Sciences.[37]

During the interwar period, Planck became a member of the Deutsche Volks-Partei (German People's Party), the party of Nobel Peace Prize laureateGustav Stresemann, which aspired to liberal aims for domestic policy and rather revisionistic aims for politics around the world.

Planck disagreed with the introduction ofuniversal suffrage and later expressed the view that the Nazi dictatorship resulted from "the ascent of the rule of the crowds".[38]

Quantum mechanics

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From left to right:W. Nernst,A. Einstein, Planck,R. A. Millikan, andvon Laue at a dinner given by von Laue in Berlin on 11 November 1931

At the end of the 1920s,Niels Bohr,Werner Heisenberg, andWolfgang Pauli had worked out theCopenhagen interpretation of quantum mechanics, but it was rejected by Planck, and by Schrödinger, Laue, and Einstein as well. Planck expected thatwave mechanics would soon render quantum theory  – his own child – unnecessary. This was not to be the case, however. Further work only served to underscore the enduring central importance of quantum theory, even against his and Einstein's philosophical revulsions. Here Planck experienced the truth of his own earlier observation from his struggle with the older views during his younger years: "A new scientific truth does not triumph by convincing its opponents and making them see the light, but rather because its opponents eventually die, and a new generation grows up that is familiar with it."[39]

Nazi dictatorship and the Second World War

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When the Nazis came to power in 1933, Planck was 74 years old. He witnessed many Jewish friends and colleagues expelled from their positions and humiliated, and hundreds of scientists emigrate fromNazi Germany. Again he tried to "persevere and continue working" and asked scientists who were considering emigration to remain in Germany. Nevertheless, he did help his nephew, the economistHermann Kranold, to emigrate toLondon after his arrest.[40] He hoped the crisis would abate soon and the political situation would improve.

Otto Hahn asked Planck to gather well-known German professors in order to issue a public proclamation against the treatment of Jewish professors, but Planck replied, "If you are able to gather today 30 such gentlemen, then tomorrow 150 others will come and speak against it, because they are eager to take over the positions of the others."[41] Under Planck's leadership, theKaiser Wilhelm Society (KWG) avoided open conflict with the Nazi regime, except concerning the Jewish Fritz Haber. In May 1933 Planck requested and received an interview with the recently appointed Chancellor of GermanyAdolf Hitler to discuss the issue, telling him that the "forced emigration of Jews would kill German science and Jews could be good Germans", to which the chancellor replied "but we don't have anything against the Jews, only against communists". Planck was therefore unsuccessful, since this reply "took from him every basis for further negotiation",[42] as to Hitler "the Jews are all Communists, and these are my enemies." In the following year, 1934, Haber died in exile.[43]

One year later, Planck, having been the president of the KWG since 1930, organized in a somewhat provocative style an official commemorative meeting for Haber. He also succeeded in secretly enabling a number of Jewish scientists to continue working in institutes of the KWG for several years. In 1936, his term as president of the KWG ended, and the Nazi government pressured him to refrain from seeking another term.

As the political climate in Germany gradually became more hostile,Johannes Stark, prominent exponent of theDeutsche Physik ("German Physics", also called "Aryan Physics") attacked Planck,Arnold Sommerfeld, and Heisenberg for continuing to teach the theories of Einstein, calling them "white Jews". The "Hauptamt Wissenschaft" (Nazi government office for science) started an investigation of Planck's ancestry, claiming that he was "1/16 Jewish", but Planck denied it.[44]

In 1938, Planck celebrated his 80th birthday. The DPG held a celebration, during which the Max-Planck medal (founded as the highest medal by the DPG in 1928) was awarded to French physicistLouis de Broglie. At the end of 1938, the Prussian Academy lost its remaining independence and was taken over by Nazis, as part of their process ofGleichschaltung. Planck protested by resigning his presidency. He continued to travel frequently, giving numerous public talks, such as his talk on Religion and Science and, five years later, he was sufficiently fit to climb 3,000-metre peaks in theAlps.

During theSecond World War, the increasing number of Allied bombing missions against Berlin forced Planck and his wife to temporarily leave the city and live in the countryside. In 1942, he wrote: "In me an ardent desire has grown to persevere this crisis and live long enough to be able to witness the turning point, the beginning of a new rise." In February 1944, his home in Berlin was completely destroyed by an air raid, annihilating all his scientific records and correspondence. His rural retreat was threatened by the rapid advance of the Allied armies from both sides.

In 1944, Planck's sonErwin was arrested by theGestapo following the attempted assassination of Hitler in the20 July plot. He was tried and sentenced to death by thePeople's Court in October 1944. Erwin was hanged at Berlin'sPlötzensee Prison in January 1945. The death of his son destroyed much of Planck's will to live.[45]

Personal life and death

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Planck's grave in Göttingen

In March 1887, Planck married Marie Merck (1861–1909), sister of a school fellow, and moved with her into a sublet apartment in Kiel. They had four children: Karl (1888–1916), the twins Emma (1889–1919) and Grete (1889–1917), andErwin (1893–1945).

After living in the apartment in Berlin, the Planck family lived in a villa in Berlin-Grunewald, Wangenheimstrasse 21. Several other professors fromUniversity of Berlin lived nearby, among them theologianAdolf von Harnack, who became a close friend of Planck. Soon the Planck home became a social and cultural center. Numerous well-known scientists, such asAlbert Einstein,Otto Hahn andLise Meitner were frequent visitors. The tradition of jointly performing music had already been established in the home ofHelmholtz.

After several happy years, in July 1909 Marie Planck died, possibly fromtuberculosis.

In March 1911 Planck married his second wife, Marga von Hoesslin (1882–1948); in December his fifth child Hermann was born.

During theFirst World War Planck's second son Erwin was taken prisoner by the French in 1914, while his oldest son Karl was killed in action atVerdun. Grete died in 1917 while giving birth to her first child. Her sister died the same way two years later, after having married Grete's widower. Both granddaughters survived and were named after their mothers. Planck endured these losses stoically.

In January 1945,Erwin Planck, to whom he had been particularly close, was sentenced to death by theNaziVolksgerichtshof because of his participation in thefailed attempt to assassinate Hitler in July 1944. Erwin was executed on 23 January 1945.[46]

After World War II ended, Planck, his second wife, and their son were brought to a relative inGöttingen, where Planck died on October 4, 1947. He was buried in the old Stadtfriedhof (City Cemetery) in Göttingen.[47]

Religious views

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Planck on a West German stamp (1952)

Planck was a member of theLutheran Church in Germany.[48] He was very tolerant toward alternative views andreligions.[49] In a lecture in 1937 entitled "Religion und Naturwissenschaft" ("Religion and Natural Science") he suggested the importance of these symbols and rituals related directly with a believer's ability to worship God, but that one must be mindful that the symbols provide an imperfect illustration of divinity. He criticized atheism for being focused on the derision of such symbols, while at the same time warned of the over-estimation of the importance of such symbols by believers.[50]

In "Religion und Naturwissenschaft", Planck expressed the view that God is present everywhere, and he held that "the holiness of the unintelligible Godhead is conveyed by the holiness of symbols." Atheists, he thought, attach too much importance to what are merely symbols. He was a churchwarden from 1920 until his death, and believed in an almighty, all-knowing, beneficent God (although not necessarily a personal one). Both science and religion wage a "tireless battle against skepticism and dogmatism, against unbelief and superstition" with the goal "toward God!"[49]

Planck said in 1944, "As a man who has devoted his whole life to the most clear headed science, to the study of matter, I can tell you as a result of my research about atoms this much: There is no matter as such. All matter originates and exists only by virtue of a force which brings the particle of an atom to vibration and holds this most minute solar system of the atom together. We must assume behind this force the existence of a conscious and intelligent spirit [orig.geist]. This spirit is the matrix of all matter."[51]

Planck argued that the concept of God is important to both religion and science, but in different ways: "Both religion and science require a belief in God. For believers, God is in the beginning, and for physicists He is at the end of all considerations … To the former He is the foundation, to the latter, the crown of the edifice of every generalized world view".[52]

Furthermore, Planck wrote,

..."to believe" means "to recognize as a truth", and the knowledge of nature, continually advancing on incontestably safe tracks, has made it utterly impossible for a person possessing some training in natural science to recognize as founded on truth the many reports of extraordinary occurrences contradicting the laws of nature, of miracles which are still commonly regarded as essential supports and confirmations of religious doctrines, and which formerly used to be accepted as facts pure and simple, without doubt or criticism. The belief in miracles must retreat step by step before relentlessly and reliably progressing science and we cannot doubt that sooner or later it must vanish completely.[53]

Noted historian of scienceJohn L. Heilbron characterized Planck's views on God asdeistic.[54] Heilbron further relates that when asked about his religious affiliation, Planck replied that although he had always been deeply religious, he did not believe "in a personal God, let alone a Christian God".[55]

Publications

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Vorlesungen über die Theorie der Wärmestrahlung, 1906

ter Haar, D. (1967)."On the Theory of the Energy Distribution Law of the Normal Spectrum"(PDF).The Old Quantum Theory.Pergamon Press. p. 82.LCCN 66029628. Archived fromthe original(PDF) on 20 September 2016. Retrieved5 April 2014.

See also

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Notes

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  1. ^Germany wasunder Allied occupation at the time of Planck's death.

References

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  1. ^abBorn, M. (1948)."Max Karl Ernst Ludwig Planck. 1858–1947".Obituary Notices of Fellows of the Royal Society.6 (17):161–188.doi:10.1098/rsbm.1948.0024.
  2. ^"Planck's constant"Archived 15 December 2018 at theWayback Machine.Cambridge Dictionary.
  3. ^"Planck"Archived 26 December 2014 at theWayback Machine.Random House Webster's Unabridged Dictionary.
  4. ^The Nobel Prize in Physics 1918Archived 5 September 2015 at theWayback Machine. Nobelprize.org. Retrieved on 5 July 2011.
  5. ^Fraenkel, Abraham (2016).Recollections of a Jewish Mathematician in Germany. Basel, Switzerland: Birkhäuser. p. 96.ISBN 978-3-319-30845-6.
  6. ^"Max Planck: Unveiling the Father of Quantum Theory". 13 February 2024.
  7. ^abcWeir, Jane (2009).Max Planck: Revolutionary Physicist. Capstone.ISBN 978-0-7565-4073-9.
  8. ^Christoph Seidler,Gestatten, Marx PlanckArchived 29 June 2011 at theWayback Machine, Spiegel Online, 24 April 2008
  9. ^Press releaseArchived 18 October 2009 at theWayback Machine of theMax Planck Society about Max Planck's name.
  10. ^"Max Planck | Encyclopedia.com".www.encyclopedia.com. Retrieved8 May 2024.
  11. ^Brown, Brandon R. (2015).Planck: Driven by Vision, Broken by War. Oxford University Press. p. 14.ISBN 978-0-19-021947-5.
  12. ^Encyclopædia Britannica: Max Planck
  13. ^Wells, James D. (6 March 2016)."Prof. von Jolly's 1878 prediction of the end of theoretical physics as reported by Max Planck".Scholardox.hdl:2027.42/163719.
  14. ^Planck, Max (1897).Vorlesungen über Thermodynamik. Leipzig: Verlag Von Veit & Company.Archived from the original on 24 June 2012. Retrieved27 June 2012. English translation:Planck, Max (1903).Treatise on Thermodynamics. London: Longmans, Green, and Company.Archived from the original on 20 February 2012. Retrieved27 June 2012.Treatise on Thermodynamics.
  15. ^"Max Planck – Biographical".Nobelprize.org. Nobel Prize Organisation.Archived from the original on 26 February 2017. Retrieved26 February 2017.
  16. ^Jacques Hadamard (1915).Four lectures on mathematics: delivered at Columbia University in 1911. Columbia University Press. pp. 7. Retrieved5 July 2011.
  17. ^"Max Karl Ernst Ludwig Planck".American Academy of Arts & Sciences. 9 February 2023. Retrieved22 June 2023.
  18. ^"Max Planck – Humboldt-Universität zu Berlin".www.hu-berlin.de.Archived from the original on 31 May 2016. Retrieved15 May 2016.
  19. ^"Erwin Schrödinger – Humboldt-Universität zu Berlin".www.hu-berlin.de.Archived from the original on 31 May 2016. Retrieved15 May 2016.
  20. ^"Max Planck".www.nasonline.org. Retrieved22 June 2023.
  21. ^"APS Member History".search.amphilsoc.org. Retrieved22 June 2023.
  22. ^Verband Deutscher Elektrotechniker; Elektrotechnischer Verein (Berlin, Germany) (1948)."ETZ: Elektrotechnische Zeitschrift: Ausg. A."ETZ: Elektrotechnische Zeitschrift (in German).69 (A). VDE-Verlag.,Snipped extractArchived 5 April 2017 at theWayback Machine
  23. ^"Max Planck – The Mathematics Genealogy Project".www.genealogy.math.ndsu.nodak.edu.Archived from the original on 8 June 2017. Retrieved5 June 2017.
  24. ^Vlasak, Weldon (February 2001)."Planck's theory and thermodynamics".Chemical Innovation.31 (2):56–59. Retrieved7 August 2024.
  25. ^Hoffmann:Max Planck. Munich 2008, p. 29.
  26. ^Hartmann:Max Planck als Mensch und Denker. 3. revised edition, Basel 1953, p. 156.
  27. ^Hoffmann:Max Planck. Munich 2008, p. 31 f.
  28. ^abFor a solid approach to the complexity of Planck's intellectual motivations for the quantum, for his reluctant acceptance of its implications, see Helge Kragh,Max Planck: the reluctant revolutionaryArchived 5 November 2018 at theWayback Machine,Physics World. December 2000.
  29. ^Egginton, William,The Rigor of Angels: Max Planck unleashed a revolution in physics, pp. 52–54, Pantheon, Delancy Place, 2023
  30. ^Kragh, Helge (1 December 2000), Max Planck: the reluctant revolutionary, PhysicsWorld.com
  31. ^"The Nobel Prize in Physics 1918".www.nobelprize.org.Archived from the original on 9 June 2017. Retrieved11 June 2017.
  32. ^Heilbron, 2000,p. 8Archived 2018-04-17 at theWayback Machine
  33. ^Einstein and the Quantum, A.Douglas Stone, Princeton University Press, Princeton and Oxford, chapter 9,Tripping the light heuristic, 2013.
  34. ^Baker, F. Todd (2015).Atoms and Photons and Quanta, Oh My!: Ask the physicist about atomic, nuclear, and quantum physics. Morgan & Claypool Publishers.ISBN 978-1-62705-940-4.
  35. ^Heilbron, 2000,p. 72Archived 20 March 2015 at theWayback Machine
  36. ^Evans, James; Thorndike, Alan S. (2007).Quantum mechanics at the crossroads: new perspectives from history, philosophy and physics. Springer. p. 31.ISBN 978-3-540-32663-2.Archived from the original on 20 March 2015. Retrieved14 October 2016.Extract of page 31Archived 20 March 2015 at theWayback Machine
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  38. ^Scully, Robert J.; Scully, Marlan O. (2007).The demon and the quantum: from the pythagorean mystics to Maxwell's demon and quantum mystery. Wiley-VCH. p. 90.ISBN 978-3-527-40688-3.Archived from the original on 20 March 2015. Retrieved14 October 2016.,Chapter 7, p 90Archived 20 March 2015 at theWayback Machine
  39. ^Quoted in Thomas Kuhn,The Structure of Scientific Revolutions (1970 ed.): p. 150.
  40. ^"Johanna Kranold Stein".Ithaca Journal. Legacy.com.Archived from the original on 11 October 2016. Retrieved10 October 2016.
  41. ^In a slightly different translation, Hahn remembers Planck saying: "If you bring together 30 such men today, then tomorrow 150 will come to denounce them because they want to take their places." This translated quote is found in: Heilbron, 2000, p. 150. Heilbron, at the end of the paragraph, on p. 151, cites the following references to Hahn's writings: Otto HahnEinige persönliche Erinnerungen an Max Planck MPG,Mitteilungen (1957) p. 244, and Otto HahnMy Life (Herder and Herder, 1970) p. 140.
  42. ^Clary, David (2022).Schrödinger in Oxford. p. 54.Bibcode:2022scox.book.....C.
  43. ^O'Flaherty, James C. (1956)."Max Planck and Adolf Hitler".AAUP Bulletin.42 (3):437–444.doi:10.2307/40222051.ISSN 0001-026X.JSTOR 40222051.
  44. ^Heilbron, 2000,p. 191Archived 20 March 2015 at theWayback Machine
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  46. ^Jürgen Heideking; Christof Mauch (1998).American Intelligence and the German Resistance to Hitler: A Documentary History. Westview Press. pp. 361–.ISBN 978-0-8133-3636-7.Archived from the original on 3 June 2013. Retrieved5 July 2011.
  47. ^Max Planck's Grave at Göttingen, Germany, Youtube, January 2016,archived from the original on 18 March 2016, retrieved4 January 2016
  48. ^Erich Dinkler, "Planck, Max", inDie Religion in Geschichte und Gegenwart, Third Edition, Volume V, Tübingen (Germany), 1961, col. 404–405
  49. ^abThe Religious Affiliation of Physicist Max Planck[usurped]. adherents.com. Retrieved on 5 July 2011.
  50. ^The Life Max PlanckArchived 2 November 2012 at theWayback Machine. encyclopedia.com. Retrieved on 7 March 2012.
  51. ^"Das Wesen der Materie" [The Nature of Matter], speech at Florence, Italy (1944) (from Archiv zur Geschichte der Max-Planck-Gesellschaft, Abt. Va, Rep. 11 Planck, Nr. 1797)
  52. ^"Religion and Natural Science" (Lecture Given 1937)Scientific Autobiography and Other Papers, trans. F. Gaynor (New York, 1949), pp. 184
  53. ^Max Planck, Scientific Autobiography and Other Papers
  54. ^J. L. Heilbron (1986).The Dilemmas of an Upright Man: Max Planck and the Fortunes of German Science. Harvard University Press. p. 198.ISBN 978-0-674-00439-9.On the other side, Church spokesmen could scarcely become enthusiastic about Planck's deism, which omitted all reference to established religions and had no more doctrinal content than Einstein's Judaism. It seemed useful therefore to paint the lily, to improve the lesson of Planck's life for the use of proselytizers and to associate the deanthropomorphizer of science with a belief in a traditional Godhead.
  55. ^Heilbron, 2000,page 198Archived 17 April 2018 at theWayback Machine

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