师资队伍

陈 爽
职 称:副教授
联系电话:025-89681593
地 址:中国江苏省南京市栖霞区仙林大道163号,开元体育-开元试玩-开元网站 C212室
邮 编:210023
个人主页:
个人简历
研究方向 | |
纳米材料、铁电材料的多尺度模拟: (1)物理、化学性质计算; (2)材料设计; (3)器件应用探索。 | |
教育经历 | |
2005-2010,理学博士,物理化学,南京大学 | |
工作经历 | |
2015-至今,副教授(2017年10月起硕士生导师/2023年6月起博士生导师),南京大学 | |
科研项目(在研) | |
1. 2025.01-2028.12,国家自然科学基金面上项目,典型忆阻器通过阻变层掺杂改性与纳米调控实现性能提升的计算研究(主持) 2. 2023.12-2028.11,科技部国家重点研发计划,量子化学计算方法开发与碳基催化转化数据库(参与) 3. 2023.11-2026.10,科技部国家重点研发计划,仿生多相材料/细胞复合体系计算模拟、机器学习与数据分析平台(参与) 4. 2023.10-2026.09,江苏省前沿引领技术基础研究重大项目,数据驱动的功能材料智能设计(参与) 5. 2021.01-2024.12,国家自然科学基金面上项目,多功能性有机-无机杂化铁电体的理论设计(主持) | |
任教课程 | |
1. 《化学原理》 2. 《计算材料学》 | |
代表性论文 | |
1. Zhuo Chen, Yu-Chen Li, Tie-Lin Kong, Yang-Yang Lv, Wei Fa,* and Shuang Chen.* Computational Study on Interlocked-Ferroelectricity-Contributed High-Performance Memristors Based on Two-Dimensional van der Waals Ferroelectric Semiconductors. ACS Applied Materials & Interfaces, 2024, 16, 26428-26438. 2. Yi-Ming Xu, Kai Li, Zhi-Bin Jian, Jie Bie, Meng Wei, and Shuang Chen.* Accelerated Discovery of Targeted Environmentally Friendly A(II)B(I)X3-Type Three-Dimensional Hybrid Organic-Inorganic Perovskites for Potential LightHarvesting via Machine Learning. ACS Applied Materials & Interfaces, 2023, 15, 52661-52672. 3. Ping Xu, Wei Fa*, and Shuang Chen.* Computational Study on Filament Growth Dynamics in Microstructure-Controlled Storage Media of Resistive Switching Memories. ACS Nano, 2023, 17, 10511-10520. 4. Tong Guan and Shuang Chen.* Multiscale Simulations on SynapticSignal Transduction of Energy-Harvesting P(VDF-TrFE)-Based Artificial Retina. The Journal of Physical Chemistry B, 2023, 127, 6385-6394. 5. Jie Bie, Dai-Bei Yang, Ming-Gang Ju, Qiang Pan, Yu-Meng You, Wei Fa,* Xiao Cheng Zeng,* and Shuang Chen.* Molecular Design of Three-Dimensional Metal-Free A(NH4)X3 Perovskites for Photovoltaic Applications. JACS Au, 2021, 1, 475-483. 6. Daibei Yang, Lingheng Luo, Yi Gao, Shuang Chen,* and Xiao Cheng Zeng.* Rational Design of One-Dimensional Hybrid Organic-Inorganic Perovskites with Room-Temperature Ferroelectricity and Strong Piezoelectricity. Materials Horizons, 2019, 6, 1463-1473. |