Zimin Nie

Active 1999–2020

41
Papers
25,251
Citations
41
h-index
41
i10-index

Citations

Citations per year for Zimin Nie1990: 2 citations1997: 1 citations2000: 5 citations2001: 3 citations2002: 1 citations2003: 6 citations2004: 2 citations2005: 3 citations2006: 1 citations2007: 1 citations2008: 2 citations2009: 11 citations2010: 61 citations2011: 196 citations2012: 257 citations2013: 272 citations2014: 283 citations2015: 287 citations2016: 283 citations2017: 338 citations2018: 320 citations2019: 287 citations2020: 308 citations2021: 199 citations2022: 121 citations2023: 70 citations2024: 32 citations2025: 10 citations1991–1996: no citations, so these years are not shown1998–1999: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorChina: 1,492 citing papers, 39.5% of this breakdownUnited States: 835 citing papers, 22.1% of this breakdownAustralia: 216 citing papers, 5.7% of this breakdownSouth Korea: 152 citing papers, 4% of this breakdownSingapore: 136 citing papers, 3.6% of this breakdownCanada: 124 citing papers, 3.3% of this breakdownGermany: 121 citing papers, 3.2% of this breakdownHong Kong: 103 citing papers, 2.7% of this breakdownUnited Kingdom: 101 citing papers, 2.7% of this breakdownJapan: 72 citing papers, 1.9% of this breakdownFrance: 48 citing papers, 1.3% of this breakdownSaudi Arabia: 37 citing papers, 1% of this breakdown
0%39.5%Other 9%

Fields

  • Engineering79.8%
  • Materials Science10.7%
  • Energy6%
  • Chemistry1.6%
  • Environmental Science0.6%
  • Biochemistry, Genetics and Molecular Biology0.4%
  • Other0.9%

Topics

  • Advancements in Battery Materials21.6%
  • Advanced Battery Materials and Technologies21%
  • Advanced battery technologies research12.3%
  • Supercapacitor Materials and Fabrication10.6%
  • Advanced Battery Technologies Research8.5%
  • Graphene research and applications3.1%
  • Other22.9%

Coauthors

All papers

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  1. Performance enhancement and degradation mechanism identification of a single-atom Co–N–C catalyst for proton exchange membrane fuel cells

    Authors: , , , , , , , , , , , , , , , , , , , , , - Nature Catalysis 2020 cited by 725

  2. Reversible aqueous zinc/manganese oxide energy storage from conversion reactions

    Authors: , , , , , , , , , , , - Nature Energy 2016 cited by 2,997

  3. Sodium Ion Insertion in Hollow Carbon Nanowires for Battery Applications

    Authors: , , , , , , , , , - Nano Letters 2012 cited by 1,919

  4. Dendrite-Free Lithium Deposition via Self-Healing Electrostatic Shield Mechanism

    Authors: , , , , , , , , , , , , , , , - Journal of the American Chemical Society 2013 cited by 2,097

  5. Hard carbon nanoparticles as high-capacity, high-stability anodic materials for Na-ion batteries

    Authors: , , , , , , , , , - Nano Energy 2015 cited by 416

  6. Controlling Solid–Liquid Conversion Reactions for a Highly Reversible Aqueous Zinc–Iodine Battery

    Authors: , , , , , , , , , , - ACS Energy Letters 2017 cited by 350

  7. Zirconium-Based Metal–Organic Framework for Removal of Perrhenate from Water

    Authors: , , , , , , , , , , - Inorganic Chemistry 2016 cited by 202

  8. Ambipolar zinc-polyiodide electrolyte for a high-energy density aqueous redox flow battery

    Authors: , , , , , , - Nature Communications 2015 cited by 591

  9. Self-Assembled TiO2–Graphene Hybrid Nanostructures for Enhanced Li-Ion Insertion

    Authors: , , , , , , , , , , , - ACS Nano 2009 cited by 1,639

  10. Ternary Self-Assembly of Ordered Metal Oxide−Graphene Nanocomposites for Electrochemical Energy Storage

    Authors: , , , , , , , , , , , , - ACS Nano 2010 cited by 835

  11. High‐Performance LiNi0.5Mn1.5O4 Spinel Controlled by Mn3+ Concentration and Site Disorder

    Authors: , , , , , , , , , , , , , - Advanced Materials 2012 cited by 479

  12. Materials and Systems for Organic Redox Flow Batteries: Status and Challenges

    Authors: , , , , , , , , , , - ACS Energy Letters 2017 cited by 464

  13. Joint Charge Storage for High‐Rate Aqueous Zinc–Manganese Dioxide Batteries

    Authors: , , , , , , , , , , , - Advanced Materials 2019 cited by 430

  14. A new redox flow battery using Fe/V redox couples in chloride supporting electrolyte

    Authors: , , , , , , , - Energy & Environmental Science 2011 cited by 207

  15. A Soft Approach to Encapsulate Sulfur: Polyaniline Nanotubes for Lithium‐Sulfur Batteries with Long Cycle Life

    Authors: , , , , , , , , - Advanced Materials 2012 cited by 1,013

  16. Hierarchically Porous Graphene as a Lithium–Air Battery Electrode

    Authors: , , , , , , , , , , , - Nano Letters 2011 cited by 981

  17. A Stable Vanadium Redox‐Flow Battery with High Energy Density for Large‐Scale Energy Storage

    Authors: , , , , , , , , , , , - Advanced Energy Materials 2011 cited by 863

  18. A Total Organic Aqueous Redox Flow Battery Employing a Low Cost and Sustainable Methyl Viologen Anolyte and 4‐HO‐TEMPO Catholyte

    Authors: , , , , - Advanced Energy Materials 2015 cited by 709

  19. Reversible Sodium Ion Insertion in Single Crystalline Manganese Oxide Nanowires with Long Cycle Life

    Authors: , , , , , , , , - Advanced Materials 2011 cited by 702

  20. High capacity, reversible alloying reactions in SnSb/C nanocomposites for Na-ion battery applications

    Authors: , , , , , , - Chemical Communications 2012 cited by 599

  21. High Energy Density Lithium–Sulfur Batteries: Challenges of Thick Sulfur Cathodes

    Authors: , , , , , , , , , , , - Advanced Energy Materials 2015 cited by 552

  22. A biomimetic high-capacity phenazine-based anolyte for aqueous organic redox flow batteries

    Authors: , , , , , , , , - Nature Energy 2018 cited by 519

  23. Controlling SEI Formation on SnSb‐Porous Carbon Nanofibers for Improved Na Ion Storage

    Authors: , , , , , , , , , , , - Advanced Materials 2014 cited by 486

  24. Bismuth Nanoparticle Decorating Graphite Felt as a High-Performance Electrode for an All-Vanadium Redox Flow Battery

    Authors: , , , , , , , , , , - Nano Letters 2013 cited by 466