威廉希尔williamhill官方网站 有机电子与信息显示国家重点实验室
威廉希尔教师,董事长专聘教授
联系方式:
办公地点: 威廉希尔williamhill官方网站仙林校区教4-119 (4)
Email: iamljhe@njupt.edu.cn
教育及工作经历:
2022/09-至今 威廉希尔williamhill官方网站,威廉希尔,董事长专聘教授
2020/07-2022/08 北京计算科学研究中心,博士后(合作导师:林海青院士)
2018/07-2020/07 中国科学经理春应用化学研究所,博士后(合作导师:张洪杰院士)
2013/09-2018/06 吉林大学,物理化学,理学博士(导师:张红星教授)
2009/09-2013/06 牡丹江师范学院,应用化学,理学学士
研究方向:
[1] 光电功能材料的高通量设计及物性研究
(涉及领域:染料敏化太阳能电池、钙钛矿太阳能电池、稀土发光材料)
[2] 光电半导体材料缺陷性质研究
[3] 高压下新材料、新物相的物性研究
[4] 光电材料中电子空穴非辐射复合过程的非绝热分子动力学研究
主要科研项目:
1、 威廉希尔williamhill官方网站引进人才科研启动基金,NY222081,新型压力诱导卤化物钙钛矿光电材料的高通量设计及物性研究,2023/01-2025/12,10万元,在研,主持。
2、 中国博士后科学基金会第69批面上项目,2021M690326,稀土掺杂全无机钙钛矿材料的物性研究,2021/06-2022/08,8万元,结题,主持。
主要学术成绩/奖励荣誉:
近年来,在Adv. Funct. Mater., J. Phys. Chem. Lett., J. Mater. Chem. C, Inorg. Chem. Front., Dyes Pigm., J. Phys Chem. C.等国际学术期刊上发表高质量学术论文14篇,其中以第一作者身份发表9篇。
代表性著作:
1. Lingjun He; Yuanhui Sun*; Maosheng Miao; Haiqing Lin*, “Mechanism of Pressure-Driven Band Gap Evolutions in Lead-Free Halide Double Perovskites”, J. Phys. Chem. C, 2022, 126, 10230-10236.
2. Kaimin Du; Lingjun He; Shuyan Song; Jing Feng*; Yao Li; Manli Zhang; Huwei Li; Chengyu Li; Hongjie Zhang*, “In Situ Embedding Synthesis of Highly Stable CsPbBr3/CsPb2Br5@PbBr(OH) Nano/Microspheres through Water Assisted Strategy”, Adv. Funct. Mater., 2021, 2103275.
3. Lingjun He; Junling Meng; Jing Feng; Xiaojuan Liu*; Hongjie Zhang*, “Unveiling the mechanism of rare earth doping to optimize the optical performance of the CsPbBr3 perovskite”, Inorg. Chem. Front., 2020, 7, 4669-4676.
4. Lingjun He; Junling Meng; Jing Feng; Zhixiang Zhang; Xiaojuan Liu*; Hongjie Zhang*, “Insight into the Characteristics of 4f-Related Electronic Transitions for Rare-Earth-Doped KLuS2 Luminescent Materials through First-Principles Calculation”, J. Phys. Chem. C, 2020, 124, 932-938.
5. Lingjun He; Junling Meng; Jing Feng; Fen Yao; Lifang Zhang; Zhixiang Zhang; Xiaojuan Liu*; Hongjie Zhang*, “Investigation of 4f‐Related Electronic Transitions of Rare‐Earth Doped ZnO Luminescent Materials: Insights from First‐Principles Calculations”, ChemPhysChem, 2020, 21, 51-58.
6. Lingjun He; Yuanhui Sun; Wei Li; Jian Wang*; Hong-Xing Zhang, “Highly-efficient sensitizer with zinc porphyrin as building block: Insights from DFT calculations”, Sol. Energy, 2018, 173, 283-290.
7. Lingjun He; Wei Wei; Jie Chen; Ran Jia; Jian Wang*; Hong-Xing Zhang*, “The effect of D-[De-π-A]n (n= 1, 2, 3) type dyes on the overall performance of DSSCs: a theoretical investigation”, J. Mater. Chem. C, 2017, 5, 7510-7520.
8. Lingjun He; Jian Wang*; Jie Chen; Ran Jia; Hong-Xing Zhang*, “The effect of relative position of the π-spacer center between donor and acceptor on the overall performance of D-π-A dye: a theoretical study with organic dye”, Electrochim. Acta, 2017, 241, 440-448.
9. Lingjun He; Jie Chen; Fu-Quan Bai; Ran Jia; Jian Wang*; Hong-Xing Zhang*, “Fine-tuning π-spacer for high efficiency performance DSSC: a theoretical exploration with D-π-A based organic dye”, Dyes Pigm., 2017, 141, 251-261.
10. Lingjun He; Jie Chen; Fu-Quan Bai; Ran Jia; Jian Wang*; Hong-Xing Zhang*, “The influence of a dye-TiO2 interface on DSSC performance: a theoretical exploration with a ruthenium dye”, RSC Adv., 2016, 8, 81976-81982.
11. Yihong Bai; Zhen Liu; Lingjun He; Fernando Ortega, Rafeed Khleif; Yuanzheng Chen; Yuanhui Sun*; Dadong Yan*, Maosheng Miao*, “Prediction of Core Electron Reactivity and High Oxidation States in Radium under High Pressure”, J. Phys. Chem. C, 2022, 126, 12944-12950.
12. Yao Li; Qingshi Liu; Xiaojuan Liu; Jing Feng*; Lingjun He; Huwei Li; Chengyu Li; Hongjie Zhang*, “Simultaneous Enhancement of Photoluminescence and Stability of CsPbCl3 Perovskite Enabled by Titanium Ion Dopant”, J. Phys. Chem. C, 2021, 12, 10746-10752.
13. Zhixiang Zhang; Lingjun He; Jing Feng; Xiaojuan Liu*; Liang Zhou; Hongjie Zhang*, “Unveiling the Relationship between Energy Transfer and the Triplet Energy Level by Tuning Diarylethene within Europium (III) Complexes”, Inorg. Chem., 2020, 59, 661-668.
14. Teng-Fei Lu; Wei Li; Jie Chen; Fu-Quan Bai; Jian Wang; Lingjun He; Hong-Xing Zhang, “Regulating ancillary ligands of Ru (II) complexes with square-planar quadridentate ligands for more efficient sensitizers in dye-sensitized solar cells: insights from theoretical investigations”, Phys. Chem. Chem. Phys., 2016, 18, 29591-29599.