王舒東,男,博士,內蒙古大學副教授,碩士生導師。
基本介紹
- 中文名:王舒東
- 職業:教師
- 畢業院校:東南大學
- 學位/學歷:博士
個人經歷,講授課程,研究方向,科研項目,所獲獎項,社會兼職,學術論文,
個人經歷
2012.11-2015.05 義大利國家研究委員會納米科學研究所表面界面中心博士後
2009.09-2012.11 東南大學物理系凝聚態物理理學博士
2006.09-2009.07 內蒙古大學物理科學與技術學院凝聚態物理理學碩士
2002.09-2006.07 內蒙古大學理工學院電子科學與技術專業工學學士
2015.06-2017.11 內蒙古大學物理科學與技術學院講師、碩士生導師
2017.12-2018.11 內蒙古大學物理科學與技術學院特聘副研究員、碩士生導師
2018.12-至今內蒙古大學物理科學與技術學院副教授、碩士生導師
講授課程
本科生課程:“大學物理”、“大學物理實驗”“近代物理實驗”;研究生課程:“第一性原理計算”
研究方向
1.納米材料的電子結構、激子光學性質、激子動力學性質
2. GW 近似、BSE 及TDDFT 相關激發態性質計算
3. 半導體材料的電-聲子相互作用及熱輸運性質
科研項目
1. 主持國家自然科學基金, 資助號11804173 , 經費28 萬, 起止時間:2019.01-2021.12
2. 主持國家自然科學基金, 資助號11547004, 經費20 萬, 起止時間:2016.01-2018.12
3. 主持內蒙古自治區“青年科技英才支持計畫”項目,經費20 萬,起止時間:2019.01-2020.12
4. 主持內蒙古自治區自然科學基金,資助號2016MS0103,經費8 萬,起止時間:2016.01-2018.12
5. 主持內蒙古大學高層次人才科研啟動基金,經費50 萬,起止時間:2017.01-2018.12
所獲獎項
1.獲第三屆“全國高等學校物理基礎課程青年教師講課比賽”內蒙古自治區賽區一等獎(2017 年)。
2. 獲第三屆“全國高等學校物理基礎課程青年教師講課比賽”華北賽區二等獎(2017 年)。
3. 內蒙古自治區高等學校“青年科技英才支持計畫”(2019 年)。
3. 內蒙古自治區高等學校“青年科技英才支持計畫”(2019 年)。
社會兼職
擔任《Journal of Physical Chemistry C》,《Journal of Alloys and Compounds》,《Journal of Applied Physics》,《Materials Letters》,《Journal of Physics: Condensed Matter》,《International Journal of Modern Physics B》,《Computational Materials Science》和《Physica E》等SCI 期刊審稿人。
學術論文
1 . R Guo and S D Wang*. Anion-dependent Hot Carrier Dynamics in ChalcogenidePerovskites SrSnX3 (X=S, Se). The Journal of Physical Chemistry C, 2019, 123, 29.(SCI二區,IF: 4.835)*通訊作者
2. X L Fan, G J Zhao and S D Wang*. Electron–phonon interaction and scattering in phosphorene. J. Phys. D: Appl. Phys., 2018, 51, 155301.(SCI 二區,IF: 2.588)*通訊作者
3. R Denk#, A Lodi-Rizzini#, S D Wang#, et al. Probing optical excitations in chevron-like armchair graphene nanoribbons. Nanoscale, 2017, 9, 18326.(SCI 一區,IF: 7.367)#共同第一作者
4 . S D Wang* and R Guo. Relaxation of the photoexcited electrons in chevron-type graphene nanoribbons: Many-body theory and nonadiabatic molecular dynamics modeling. Carbon,2017, 124, 308.(SCI 一區,IF: 6.337)*通訊作者
5 . S D Wang*, W H Wang, and G J Zhao. Thermal transport properties of antimonene: an abinitio study. Phys. Chem. Chem. Phys., 2016, 18, 31217(SCI 二區,IF: 4.449)*通訊作者
6. S D Wang*. Optical response and excitonic effects in graphene nanoribbons derived frombiphenylene. Materials Letters, 2016, 167, 258.(SCI 二區,IF: 2.437)
7. S D Wang, Y H Li, J Yip, and J L Wang. The excitonic effects in single and double-walledboron nitrid nanotubes. The Journal of Chemical Physics, 2014, 140, 244701(. SCI 二區,IF: 3.122)
8. S D Wang, J L Wang. Quasiparticle energies and optical excitations in chevron-typegraphene nanoribbon. The Journal of Physical Chemistry C, 2012, 116, 10193.(SCI 二區,IF: 4.835)
2. X L Fan, G J Zhao and S D Wang*. Electron–phonon interaction and scattering in phosphorene. J. Phys. D: Appl. Phys., 2018, 51, 155301.(SCI 二區,IF: 2.588)*通訊作者
3. R Denk#, A Lodi-Rizzini#, S D Wang#, et al. Probing optical excitations in chevron-like armchair graphene nanoribbons. Nanoscale, 2017, 9, 18326.(SCI 一區,IF: 7.367)#共同第一作者
4 . S D Wang* and R Guo. Relaxation of the photoexcited electrons in chevron-type graphene nanoribbons: Many-body theory and nonadiabatic molecular dynamics modeling. Carbon,2017, 124, 308.(SCI 一區,IF: 6.337)*通訊作者
5 . S D Wang*, W H Wang, and G J Zhao. Thermal transport properties of antimonene: an abinitio study. Phys. Chem. Chem. Phys., 2016, 18, 31217(SCI 二區,IF: 4.449)*通訊作者
6. S D Wang*. Optical response and excitonic effects in graphene nanoribbons derived frombiphenylene. Materials Letters, 2016, 167, 258.(SCI 二區,IF: 2.437)
7. S D Wang, Y H Li, J Yip, and J L Wang. The excitonic effects in single and double-walledboron nitrid nanotubes. The Journal of Chemical Physics, 2014, 140, 244701(. SCI 二區,IF: 3.122)
8. S D Wang, J L Wang. Quasiparticle energies and optical excitations in chevron-typegraphene nanoribbon. The Journal of Physical Chemistry C, 2012, 116, 10193.(SCI 二區,IF: 4.835)
9 . S D Wang, Q Chen, and J L Wang. Optical properties of boron nitride nanoribbons:Excitonic effects. Applied Physics Letters. 2011, 99, 063114(SCI 二區,IF: 3.515)
10. S D Wang, L Y Zhu, Q Chen, J L Wang, and F Ding. Stability and electronic structure ofhydrogen passivated few atomic layer silicon films: A theoretical exploration. Journal of Applied Physics, 2011, 109, 053516. (SCI 三區,IF: 2.185)
11. R Denk, M Hohage, P Zeppenfeld, J Cai, C A Pignedoli, H Söde, R Fasel, X Feng, K Müllen, S D Wang, D Prezzi, A Ferretti, A Ruini, E Molinari, and P Ruffieux.Exciton-dominated optical response of ultra-narrow graphene nanoribbons. NatureCommunications. 2014, 5, 4253.(SCI 區,IF: 10.742)
12 . H B Shu, Y H Li, S D Wang, and J L Wang. Thickness-Dependent Electronic and Optical Properties of Bernal-Stacked Few-Layer Germanane. The Journal of Physical Chemistry C, 2015, 119, 15526.(SCI 二區,IF: 4.835)
13. Y H Li, H B Shu, S D Wang, and J L Wang. Electronic and Optical Properties of Graphene Quantum Dots: The Role of Many-body Effects. The Journal of Physical Chemistry C, 2015, 119, 4983.(SCI 二區,IF: 4.835)
14. H B Shu, Y H Li, S D Wang, and J L Wang. Quasi-particle energies and optical excitations of hydrogenated and fluorinated germanene. Phys. Chem. Chem. Phys., 2015, 17, 4542.(SCI 二區,IF: 4.11)
15. H B Shu, S D Wang, Y H Li, J Yip, and J L Wang. Tunable electronic and optical properties of monolayer silicane under tensile strain: A many-body study. The Journal of Chemical Physics, 2014, 141, 064707.(SCI 二區,IF: 3.122)
16. J Pan, S D Wang, Q Chen, J G Hu, and J L Wang. Band-Structures engineering of ZnO by anion-cation co-doping for enhanced photo-electrochemical activity. ChemPhysChem,2014, 15, 1611.(SCI 二區,IF: 3.36)
17. J Pan, S D Wang, D Y Zhang, J G Hu, Q Chen, and J L Wang. Magnetism and stability of noncompensated anion-cation codopoed ZnO. Journal of Applied Physics, 2013, 113,043915. (SCI 三區,IF: 2.185)
18. L Y Zhu, H Hu, Q Chen, S D Wang, and J L Wang. Formation and electronic properties of hydrogenated few layer graphene. Nanotechnology, 2011, 22, 185202.(SCI 二區,IF:3.672)
19 . Q Chen, J L Wang, L Y Zhu, S D Wang, and F Ding. Fluorination induced half metallicity in two-dimensional few zinc oxide layers. The Journal of Chemical Physics, 2010, 132,204703.(SCI 二區,IF: 3.122)
11. R Denk, M Hohage, P Zeppenfeld, J Cai, C A Pignedoli, H Söde, R Fasel, X Feng, K Müllen, S D Wang, D Prezzi, A Ferretti, A Ruini, E Molinari, and P Ruffieux.Exciton-dominated optical response of ultra-narrow graphene nanoribbons. NatureCommunications. 2014, 5, 4253.(SCI 區,IF: 10.742)
12 . H B Shu, Y H Li, S D Wang, and J L Wang. Thickness-Dependent Electronic and Optical Properties of Bernal-Stacked Few-Layer Germanane. The Journal of Physical Chemistry C, 2015, 119, 15526.(SCI 二區,IF: 4.835)
13. Y H Li, H B Shu, S D Wang, and J L Wang. Electronic and Optical Properties of Graphene Quantum Dots: The Role of Many-body Effects. The Journal of Physical Chemistry C, 2015, 119, 4983.(SCI 二區,IF: 4.835)
14. H B Shu, Y H Li, S D Wang, and J L Wang. Quasi-particle energies and optical excitations of hydrogenated and fluorinated germanene. Phys. Chem. Chem. Phys., 2015, 17, 4542.(SCI 二區,IF: 4.11)
15. H B Shu, S D Wang, Y H Li, J Yip, and J L Wang. Tunable electronic and optical properties of monolayer silicane under tensile strain: A many-body study. The Journal of Chemical Physics, 2014, 141, 064707.(SCI 二區,IF: 3.122)
16. J Pan, S D Wang, Q Chen, J G Hu, and J L Wang. Band-Structures engineering of ZnO by anion-cation co-doping for enhanced photo-electrochemical activity. ChemPhysChem,2014, 15, 1611.(SCI 二區,IF: 3.36)
17. J Pan, S D Wang, D Y Zhang, J G Hu, Q Chen, and J L Wang. Magnetism and stability of noncompensated anion-cation codopoed ZnO. Journal of Applied Physics, 2013, 113,043915. (SCI 三區,IF: 2.185)
18. L Y Zhu, H Hu, Q Chen, S D Wang, and J L Wang. Formation and electronic properties of hydrogenated few layer graphene. Nanotechnology, 2011, 22, 185202.(SCI 二區,IF:3.672)
19 . Q Chen, J L Wang, L Y Zhu, S D Wang, and F Ding. Fluorination induced half metallicity in two-dimensional few zinc oxide layers. The Journal of Chemical Physics, 2010, 132,204703.(SCI 二區,IF: 3.122)