蘇東(中國科學院物理研究所研究員,先進材料與結構分析實驗室主任)

蘇東(中國科學院物理研究所研究員,先進材料與結構分析實驗室主任)

本詞條是多義詞,共19個義項
更多義項 ▼ 收起列表 ▲

蘇東,中國科學院物理研究所研究員,物理所先進材料與結構分析實驗室主任, A01組課題組長。1998年南京大學物理系學士學位,2003年南京大學物理系和中科院物理研究所電鏡實驗室(聯合培養)凝聚態物理專業博士學位。曾先後在瑞士洛桑高等理工大學、美國伊利諾伊大學、美國亞利桑那州立大學做博士後研究(2004-2008),於 2008-2019年在美國布魯克海文國家實驗室先後擔任 助理,副,正、終身研究員(continuing appointment)和研究室主任 (group leader),於2019年加入中科院物理所凝聚態物理國家實驗室,2023年起擔任先進材料與結構分析實驗室主任。擔任中國物理學會固體缺陷專業委員會委員,高能同步輻射光源(HEPS)第一屆用戶委員會委員,科協卓越期刊《Renewables》共同主編,和《Journal of Energy Chemistry》、《Interdisciplinary Materials》、《Microstructures》、《Next Materials》、《電子顯微學報》等雜誌編委。

基本介紹

  • 中文名:蘇東
  • 國籍中國
  • 畢業院校:南京大學 、中科院物理研究所 
  • 學位/學歷:博士 
人物經歷,研究方向,主要成就,主要貢獻,

人物經歷

曾擔任美國能源部布魯克海文納米中心電鏡團隊負責人;
2008-2019年在美國布魯克海文國家實驗室先後任助理、副、正研究員;
2019年起加入中國科學院物理研究所先進材料與結構分析實驗室;
2019-2023年入選 "科睿唯安"高被引科學家。

研究方向

鋰離子電池;能源材料;多相催化;先進電子顯微學前沿;材料物理。
研究課題及展望:
(1)鋰離子電池和鈉離子電池研究:鋰電池新材料和新機制的探索;
(2) 跨尺度、多角度的研究能源材料中動態過程;結構相變的微觀機制;離子遷移以及界面動力學;
(3)機器學習與深度學習在電子顯微學方向的套用。

主要成就

  • 英文專著 2 章節,英文綜述17 篇,中文綜述1 篇;
  • SCI論文>400篇;包括在高影響因子(>10)雜誌上以通訊(含共同)作者發表文章 >100 篇;
  • 論文總引用數:>50000, H指數:125(google);
  • 2019-2024 連續 6年入選 "科睿唯安"高被引科學家(Highly Cited Researchers);
  • 國內會議keynote/Invited 報告 >100次; ACS, MRS, ECS 等國際會議邀請報告以及國外大學邀請報告> 20次。

主要貢獻

SCI雜誌上發表>400篇文章,總引用率>50000次,H因子~116。
代表性論文及專利:
Recent research papers:
  1. Atomically Resolved Transition Pathways of Iron Redox,JACS, DOI: 10.1021/jacs.4c05309,Link.
  2. Tuning the CO2 Hydrogenation Activity via Regulating the Strong Metal–Support Interactions of the Ni/Sm2O3 Catalyst, ACS Catalysis, 14: 3158(2024), link
  3. Thermal‐Induced Structure Evolution at the Interface between Cathode and Solid‐State Electrolyte,Small Structures, 2300342 (2023), link
  4. Lattice pinning in MoO3 via coherent interface with stabilized Li+ intercalation, Nature Communications, 14:6662(2023),link
  5. Self-purifying Electrolyte Enables High Energy Li ion Batteries, Energy & Environmental Science, 15:3331(2022), link
  6. Ensemble Machine‐Learning‐Based Analysis for In Situ Electron Diffraction,Advanced Theory and Simulations, (2022), link
  7. Atomic Structure Evolution of Pt–Co Binary Catalysts: Single Metal Sites versus Intermetallic Nanocrystals, Advanced Materials, 33: 2106371 (2021), link
  8. Direct Observation of Defect‐aided Structural Evolution in Ni‐rich Layered Cathode, Angewandte Chemie, 132:22276 (2020), link
  9. Surface Regulation Enables High Stability of Single-Crystal Lithium-Ion Cathodes at High Voltage, Nature Communications, 11:3050(2020), link
  10. Phase Evolution of Conversion-type Electrode for Lithium Ion Batteries, Nature Communications, 10:2224 (2019),link
  11. Tungsten‐Doped L10‐PtCo Ultrasmall Nanoparticles as High‐Performance Fuel Cell Cathode, Angewandte Chemie, 131, (2019), link
  12. High Energy-Density and Reversibility of Iron Fluoride Cathode Enabled Via an Intercalation Extrusion Reaction, Nature Communications, 8:2324 (2018),link
  13. Ordered Pt3Co Intermetallic Nanoparticles Derived from Metal-organic Frameworks for Oxygen Reduction,Nano Letters, 18, 4162(2018), link
  14. Strain Coupling of Conversion-type Fe3O4 Thin Film for Lithium Ion Battery, Angewandte Chemie, 56, 7813(2017), link
  15. Hard–Soft Composite Carbon as a Long‐Cycling and High‐Rate Anode for Potassium‐Ion Batteries,Advanced Functional Materials, 27, (2017), link
  16. Biaxially Strained PtPb/Pt Core/Shell Nanoplate Boosts Oxygen Reduction Catalysis, Science, 353,1410(2016), link
  17. Visualizing Non-Equilibrium Lithiation of Spinel Oxide via In Situ Transmission Electron Microscopy, Nature Communications, 7:11441 (2016), link
Recent invited review papers:
  1. Tracking Lithiation with Transmission Electron Microscopy,Science China Chemistry, (2023) link: https://doi.org/10.1007/s11426- 022-1486-1
  2. Doping Strategy in Nickel-rich Layered Oxide Cathode for Lithium-ion Battery, Renewables, (2023),link: https://www.chinesechemsoc.org/doi/full/10.31635/renewables.023.202200022
  3. Understanding the structural dynamics of electrocatalysts via liquid cell transmission electron microscopy, Current Opinion in Electrochemistry (2022) 33:100936, link: https://doi.org/10.1016/j.coelec.2022.100936
  4. Moiré Fringe Method via Scanning Transmission Electron Microscopy, Small Methods, (2021) link:https://doi.org/10.1002/smtd.202101040
  5. Structural Changes of Intermetallic Catalysts under Reaction Conditions, Small Structures, (2021) link:https://doi.org/10.1002/sstr.202100011
  6. Deep Learning Analysis on Microscopic Imaging in Materials Science, Materials Today Nano, (2020) link: https://doi.org/10.1016/j.mtnano.2020.100087
  7. Supported and Coordinated Single Metal Site Electrocatalysts, Materials Today, (2020),link: https://doi.org/10.1016/j.mattod.2020.02.019
  8. In Situ Transmission Electron Microscopy on Energy‐Related Catalysis, Advanced Energy Materials, (2019), link: https://doi.org/10.1002/aenm.201902105
  9. In‐situ Structural Characterizations of Electrochemical Intercalation of Graphite Compounds, Carbon Energy, (2019),link: https://doi.org/10.1002/cey2.21
  10. Atomic Arrangement Engineering of Metallic Nanocrystals for Energy-Conversion Electrocatalysis, Joule, (2019),link: https://doi.org/10.1016/j.joule.2019.03.014
  11. Advanced Electron Microscopy Characterization of Nanomaterials for Catalysis." Green Energy & Environment, (2017), link: https://doi.org/10.1016/j.gee.2017.02.001

相關詞條

熱門詞條

聯絡我們