Zhang et al., 2018
| Publication | Publication Date | Title |
|---|---|---|
| Zhang et al. | Precise patterning of laterally stacked organic microbelt heterojunction arrays by surface‐energy‐controlled stepwise crystallization for ambipolar organic field‐effect transistors | |
| Duan et al. | Solution‐processed centimeter‐scale highly aligned organic crystalline arrays for high‐performance organic field‐effect transistors | |
| Fang et al. | Patterning liquid crystalline organic semiconductors via inkjet printing for high‐performance transistor arrays and circuits | |
| Zhao et al. | A facile method for the growth of organic semiconductor single crystal arrays on polymer dielectric toward flexible field‐effect transistors | |
| Yao et al. | Wafer‐Scale Fabrication of High‐Performance n‐Type Polymer Monolayer Transistors Using a Multi‐Level Self‐Assembly Strategy | |
| Lee et al. | Solutal‐Marangoni‐flow‐mediated growth of patterned highly crystalline organic semiconductor thin film via gap‐controlled bar coating | |
| Deng et al. | Scalable growth of organic single‐crystal films via an orientation filter funnel for high‐performance transistors with excellent uniformity | |
| Duan et al. | Scalable fabrication of highly crystalline organic semiconductor thin film by channel‐restricted screen printing toward the low‐cost fabrication of high‐performance transistor arrays | |
| Chen et al. | Organic–organic heterojunction interfaces: Effect of molecular orientation | |
| He et al. | Enhanced performance consistency in nanoparticle/TIPS pentacene‐based organic thin film transistors | |
| Wu et al. | Preparation of Single‐Crystalline Heterojunctions for Organic Electronics | |
| Jang et al. | Highly crystalline soluble acene crystal arrays for organic transistors: mechanism of crystal growth during dip‐coating | |
| Zhou et al. | High‐performance organic field‐effect transistors from organic single‐crystal microribbons formed by a solution process | |
| Lee et al. | Anisotropy of charge transport in a uniaxially aligned and chain‐extended, high‐mobility, conjugated polymer semiconductor | |
| Pfattner et al. | High‐Performance Single Crystal Organic Field‐Effect Transistors Based on Two Dithiophene‐Tetrathiafulvalene (DT‐TTF) Polymorphs | |
| Soeda et al. | Inch-size solution-processed single-crystalline films of high-mobility organic semiconductors | |
| Wang et al. | Graphene‐quantum‐dots‐induced centimeter‐sized growth of monolayer organic crystals for high‐performance transistors | |
| Ha et al. | High mobility top-gate and dual-gate polymer thin-film transistors based on diketopyrrolopyrrole-naphthalene copolymer | |
| An et al. | Well‐Balanced Ambipolar Organic Single Crystals Toward Highly Efficient Light‐Emitting Devices | |
| Huang et al. | Ambipolar Organic Field‐Effect Transistors Based on a Dual‐Function, Ultrathin and Highly Crystalline 2, 9‐didecyldinaphtho [2, 3‐b: 2′, 3′‐f] thieno [3, 2‐b] thiophene (C10‐DNTT) Layer | |
| Xiao et al. | Surficial Marangoni flow‐induced growth of ultrathin 2D molecular crystals on target substrates | |
| Lee et al. | Solvent-dependent performance of solution-processed small-molecule organic field-effect transistors | |
| Mas-Torrent et al. | Organic field-effect transistors (OFETs) of highly oriented films of dithiophene-tetrathiafulvalene prepared by zone casting | |
| Wang et al. | Wafer‐scale epitaxial growth of two‐dimensional organic semiconductor single crystals toward high‐performance transistors | |
| Deng et al. | Precise positioning of organic semiconductor single crystals with two-component aligned structure through 3D wettability-induced sequential assembly |