Rongjin Li
Affiliations: | Tianjin University, Tianjin, Tianjin Shi, China |
Area:
Organic electronicsGoogle:
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Publications
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Zong C, Zhu X, Xu Z, et al. (2021) Isomeric Dibenzoheptazethrenes for Air-stable Organic Field-effect Transistors. Angewandte Chemie (International Ed. in English) |
Yang S, Zhang Y, Wang Y, et al. (2021) Ultra-thin two-dimensional molecular crystals grown on a liquid surface for high-performance phototransistors. Chemical Communications (Cambridge, England) |
Yao J, Tian X, Yang S, et al. (2021) p-n heterojunctions composed of two-dimensional molecular crystals for high-performance ambipolar organic field-effect transistors Apl Materials. 9: 051108 |
Wang C, Fu B, Zhang X, et al. (2020) Solution-Processed, Large-Area, Two-Dimensional Crystals of Organic Semiconductors for Field-Effect Transistors and Phototransistors. Acs Central Science. 6: 636-652 |
Liu X, Zhang Y, Zhang X, et al. (2020) Continuous and highly ordered organic semiconductor thin films via dip-coating: the critical role of meniscus angle Science China Materials. 63: 1257-1264 |
Zhang Y, Yang S, Zhu X, et al. (2020) Highly efficient modulation of the electronic properties of organic semiconductors by surface doping with 2D molecular crystals Science China Chemistry. 63: 973-979 |
Hu W, Yao JY, Zhang YZ, et al. (2019) Layer-defined Strategy to Grow Two-dimensional Molecular Crystals on Liquid Surface down to Monolayer. Angewandte Chemie (International Ed. in English) |
Fu B, Wang C, Sun Y, et al. (2019) A "Phase Separation" Molecular Design Strategy Towards Large-Area 2D Molecular Crystals. Advanced Materials (Deerfield Beach, Fla.). e1901437 |
Zhu X, Zhang Y, Ren X, et al. (2019) 2D Molecular Crystal Bilayer p-n Junctions: A General Route toward High-Performance and Well-Balanced Ambipolar Organic Field-Effect Transistors. Small (Weinheim An Der Bergstrasse, Germany). e1902187 |
Zhang Y, Zhu X, Yang S, et al. (2019) Thermal-assisted self-assembly: a self-adaptive strategy towards large-area uniaxial organic single-crystalline microribbon arrays. Nanoscale |