Yizheng Jin mostly deals with Optoelectronics, Perovskite, Light-emitting diode, Nanocomposite and Diode. His research in the fields of Quantum dot and Photodetector overlaps with other disciplines such as Fabrication. His work carried out in the field of Perovskite brings together such families of science as Nanotechnology, Solution processed, Heterojunction and Charge carrier.
Yizheng Jin combines subjects such as Low voltage, Quantum well, Laser, Mineralogy and Yield with his study of Light-emitting diode. His biological study spans a wide range of topics, including Diffraction, Carbon nanotube, Polymer chemistry and Photoluminescence. His study in Diode is interdisciplinary in nature, drawing from both Electroluminescence and Quantum efficiency.
Yizheng Jin mainly investigates Optoelectronics, Nanotechnology, Light-emitting diode, Quantum dot and Nanocrystal. Yizheng Jin studies Quantum efficiency, a branch of Optoelectronics. His Nanotechnology study combines topics in areas such as Doping and Crystal structure.
His work is dedicated to discovering how Light-emitting diode, Diode are connected with PEDOT:PSS and other disciplines. The concepts of his Quantum dot study are interwoven with issues in Luminescence, Layer, Electrochemistry and Photon. The various areas that Yizheng Jin examines in his Nanocrystal study include Oxide, Indium, Zinc, Dopant and Colloid.
The scientist’s investigation covers issues in Optoelectronics, Quantum dot, Light-emitting diode, Diode and Quantum efficiency. His Optoelectronics research includes themes of Electroluminescence and Calibration. His Quantum dot research is multidisciplinary, incorporating elements of Luminescence, Electrochemistry, Exciton and Layer.
His research investigates the connection with Light-emitting diode and areas like Perovskite which intersect with concerns in Halide, Multiple quantum, Nucleation and Molecule. His Diode study combines topics from a wide range of disciplines, such as Iodide and Voltage. His work deals with themes such as Energy conversion efficiency, Effective nuclear charge, Current density, Formamidinium and OLED, which intersect with Quantum efficiency.
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Solution-processed, high-performance light-emitting diodes based on quantum dots
Xingliang Dai;Zhenxing Zhang;Yizheng Jin;Yuan Niu.
Nature (2014)
Perovskite light-emitting diodes based on solution-processed self-organized multiple quantum wells
Nana Wang;Lu Cheng;Rui Ge;Shuting Zhang.
Nature Photonics (2016)
Perovskite light-emitting diodes based on spontaneously formed submicrometre-scale structures
Yu Cao;Nana Wang;He Tian;Jingshu Guo.
Nature (2018)
Solution-processed ultraviolet photodetectors based on colloidal ZnO nanoparticles.
Yizheng Jin;Jianpu Wang;Baoquan Sun;James C. Blakesley.
Nano Letters (2008)
Interfacial Control Toward Efficient and Low-Voltage Perovskite Light-Emitting Diodes
Jianpu Wang;Nana Wang;Yizheng Jin;Junjie Si.
Advanced Materials (2015)
Quantum-Dot Light-Emitting Diodes for Large-Area Displays: Towards the Dawn of Commercialization.
Xingliang Dai;Yunzhou Deng;Xiaogang Peng;Yizheng Jin.
Advanced Materials (2017)
Efficient planar heterojunction perovskite solar cells employing graphene oxide as hole conductor
Zhongwei Wu;Sai Bai;Jian Xiang;Zhongcheng Yuan.
Nanoscale (2014)
Efficient blue light-emitting diodes based on quantum-confined bromide perovskite nanostructures
Yang Liu;Jieyuan Cui;Kai Du;He Tian.
Nature Photonics (2019)
Large-scale synthesis and characterization of carbon spheres prepared by direct pyrolysis of hydrocarbons
Yi Zheng Jin;Chao Gao;Chao Gao;Wen Kuang Hsu;Yanqiu Zhu.
Carbon (2005)
Polyurea-functionalized multiwalled carbon nanotubes: synthesis, morphology, and Raman spectroscopy.
Chao Gao;Yi Zheng Jin;Hao Kong;Raymond L D Whitby.
Journal of Physical Chemistry B (2005)
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