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Rong-Jun Zhang

Researcher at Fudan University

Publications -  131
Citations -  3027

Rong-Jun Zhang is an academic researcher from Fudan University. The author has contributed to research in topics: Thin film & Band gap. The author has an hindex of 22, co-authored 118 publications receiving 2346 citations. Previous affiliations of Rong-Jun Zhang include ULTra & Chinese Ministry of Education.

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The electronic, optical, and thermodynamic properties of borophene from first-principles calculations

TL;DR: In this article, the electronic structure and bonding characteristics of borophene were investigated by first-principles calculations, and the obtained optical properties exhibited strong anisotropy as well.
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Electronic, optical, and thermodynamic properties of borophene from first-principle calculations

TL;DR: In this article, the electronic structure and bonding characteristics of borophene were investigated by first-principle calculations, and the thermodynamic properties were investigated based on the phonon properties.
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Lead-Free Perovskite Nanowire Array Photodetectors with Drastically Improved Stability in Nanoengineering Templates

TL;DR: For the first time, three-dimensional CH3NH3SnI3 perovskite nanowire arrays were fabricated in nanoengineering templates, which can address Nanowire integration and stability issues at the same time, and it was discovered that as the nanowires are embedded in mechanically and chemically robust templates, the material decay process has been dramatically slowed down.
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All Inorganic Cesium Lead Iodide Perovskite Nanowires with Stabilized Cubic Phase at Room Temperature and Nanowire Array-Based Photodetectors.

TL;DR: It was discovered that the as-grown NWs have stable cubic phase at room temperature, which suggests a novel and practical approach to stabilize the cubic phase of CsPbI3 material, which will have broad applications for optoelectronics in the visible wavelength range.
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Study of structure and optical properties of silver oxide films by ellipsometry, XRD and XPS methods

TL;DR: In this article, the optimal O y(O qAr) gas ratio for the sample preparation will be in the 22 range 0.5-0.6, in which the optical constants become less changed.