Mingyuan Gao

Active 1998–2026

146
Papers
18,086
Citations
62
h-index
115
i10-index

Citations

Citations per year for Mingyuan Gao1990: 1 citations1999: 2 citations2000: 10 citations2001: 16 citations2002: 16 citations2003: 8 citations2004: 20 citations2005: 26 citations2006: 31 citations2007: 55 citations2008: 73 citations2009: 73 citations2010: 62 citations2011: 65 citations2012: 79 citations2013: 66 citations2014: 85 citations2015: 63 citations2016: 109 citations2017: 150 citations2018: 205 citations2019: 442 citations2020: 522 citations2021: 595 citations2022: 553 citations2023: 490 citations2024: 612 citations2025: 363 citations2026: 89 citations1991–1998: no citations, so these years are not shown

Citation sources

Countries

World map of the countries and regions citing this authorChina: 2,454 citing papers, 43.3% of this breakdownUnited States: 707 citing papers, 12.5% of this breakdownIndia: 192 citing papers, 3.4% of this breakdownGermany: 190 citing papers, 3.3% of this breakdownSingapore: 161 citing papers, 2.8% of this breakdownUnited Kingdom: 158 citing papers, 2.8% of this breakdownAustralia: 143 citing papers, 2.5% of this breakdownSouth Korea: 125 citing papers, 2.2% of this breakdownIran: 106 citing papers, 1.9% of this breakdownSpain: 103 citing papers, 1.8% of this breakdownHong Kong: 98 citing papers, 1.7% of this breakdownCanada: 86 citing papers, 1.5% of this breakdown
0%43.3%Other 20.3%

Fields

  • Engineering32.6%
  • Materials Science24.2%
  • Biochemistry, Genetics and Molecular Biology13.9%
  • Medicine12.2%
  • Computer Science5%
  • Immunology and Microbiology3.4%
  • Other8.7%

Topics

  • Nanoplatforms for cancer theranostics11.6%
  • Advanced biosensing and bioanalysis techniques6.7%
  • Nanoparticle-Based Drug Delivery6.5%
  • Quantum Dots Synthesis And Properties2.6%
  • RNA Interference and Gene Delivery2.3%
  • Advanced Nanomaterials in Catalysis2.3%
  • Other68%

Coauthors

All papers

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  1. Diverse Applications of Nanomedicine

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Mark C. Hersam, Patrick Hunziker, Jian Ji, Xingyu Jiang, Philipp Jungebluth, Pranav Kadhiresan, Kazunori Kataoka, Ali Khademhosseini, Jindŕich Kopec̆ek, Nicholas A. Kotov, Harald F. Krug, Dong Soo Lee, Claus‐Michael Lehr, Kam W. Leong, Xing‐Jie Liang, Mei Ling Lim, Luis M. Liz‐Marzán, Xiaowei Ma, Paolo Macchiarini, Huan Meng, Helmuth Möhwald, Paul Mulvaney, André E. Nel, Shuming Nie, Peter Nordlander, Teruo Okano, J.P.R. de Oliveira, Tai Hyun Park, Reginald M. Penner, Maurizio Prato, Víctor Puntes, Vincent M. Rotello, Amila Samarakoon, Raymond E. Schaak, Youqing Shen, Sebastian Sjöqvist, André G. Skirtach, Mahmoud G. Soliman, Molly M. Stevens, Hsing‐Wen Sung, Ben Zhong Tang, Rainer Tietze, Buddhisha Udugama, J. Scott VanEpps, Tanja Weil, Paul S. Weiss, Itamar Willner, Yuzhou Wu, Lily Yang, Zhao Yue, Qian Zhang, Qiang Zhang, Xian‐En Zhang, Yuliang Zhao, Xin Zhou, Wolfgang J. Parak - ACS Nano 2017 cited by 1,341

  2. Seedance 1.5 pro: A Native Audio-Visual Joint Generation Foundation Model

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , Xi Tong Hu, Weilin Huang, Zhaoyang Huang, Zhongyi Huang, Donglei Ji, Siqi Jiang, Wei Jiang, Jiang, Yunpu, Zhuo Jiang, Ashley Kim, Jianan Kong, Zhichao Lai, Shanshan Lao, Yichong Leng, Li Ai, Feiya Li, Gen Li, Huixia Li, Jiashi Li, Liang Li, Ming Li, Shanshan Li, Tao Li, Xian Li, Xiaojie Li, Xiaoyang Li, Xingxing Li, Yameng Li, Y. Li, Yiying Li, Chao Liang, Liang Han, Liang Jianzhong, Ying Liang, Zhiqiang Liang, Liao Wang, Yalin Liao, Heng Lin, Keng-Yu Lin, Shanchuan Lin, Xi Lin, Zhijie Lin, Ling, Feng, Fangfang Liu, Gaohong Liu, Jiawei Liu, Jie Liu, Jihao Liu, Shouda Liu, Shu Liu, Sichao Liu, Songwei Liu, Xin Liu, Ke Liu, Yibo Liu, Zikun Liu, Zu-Xi Liu, Junlin Lyu, Lecheng Lyu, Qian Lyu, Han Sheng Mu, Xiaonan Nie, Ning, Jingzhe, X. Pan, Yanghua Peng, Lianke Qin, Xiaohan Qu, Ren, Yuxi, Kai Shen, Guang Shi and 97 more - arXiv (Cornell University), CoRR 2025 cited by 54

  3. Metformin-Induced Stromal Depletion to Enhance the Penetration of Gemcitabine-Loaded Magnetic Nanoparticles for Pancreatic Cancer Targeted Therapy

    Authors: , , , , , , , - Journal of the American Chemical Society 2020 cited by 230

  4. Near-Infrared Afterglow Luminescence of Chlorin Nanoparticles for Ultrasensitive In Vivo Imaging

    Authors: , , , , , , , - Journal of the American Chemical Society 2022 cited by 140

  5. A Tumor‐Microenvironment‐Activatable Molecular Pro‐Theranostic Agent for Photodynamic and Immunotherapy of Cancer

    Authors: , , , , , , , , , - Advanced Materials 2023 cited by 68

  6. Reversing Acute Kidney Injury through Coordinated Interplay of Anti‐Inflammation and Iron Supplementation

    Authors: , , , , , , - Advanced Materials 2023 cited by 53

  7. Biocompatible Semiconductor Quantum Dots as Cancer Imaging Agents

    Authors: , , , , , , , - Advanced Materials 2018 cited by 313

  8. Two‐Pronged Intracellular Co‐Delivery of Antigen and Adjuvant for Synergistic Cancer Immunotherapy

    Authors: , , , , , , , , , , , , , , , , - Advanced Materials 2022 cited by 91

  9. OmniHuman-1.5: Instilling an Active Mind in Avatars via Cognitive Simulation

    Authors: , , , , , , , , - ArXiv.org, CoRR 2025 cited by 23

  10. Light‐Triggered Assembly of Gold Nanoparticles for Photothermal Therapy and Photoacoustic Imaging of Tumors In Vivo

    Authors: , , , , , - Advanced Materials 2016 cited by 545

  11. Biocompatible near-infrared quantum dots delivered to the skin by microneedle patches record vaccination

    Authors: , , , , , , , , , , , , , , , , , , , , , , , , , , - Science Translational Medicine 2019 cited by 133

  12. Imaging-guided targeted radionuclide tumor therapy: From concept to clinical translation

    Authors: , , , , , , - Advanced Drug Delivery Reviews 2022 cited by 54

  13. Chemotherapy-Sensitized In Situ Vaccination for Malignant Osteosarcoma Enabled by Bioinspired Calcium Phosphonate Nanoagents

    Authors: , , , , , , , , , , - ACS Nano 2023 cited by 41

  14. Targeting STING Activation by Antigen‐Inspired MnO2 Nanovaccines Optimizes Tumor Radiotherapy

    Authors: , , , , , , , , , , , , - Advanced Healthcare Materials 2023 cited by 38

  15. Enhancing Both Biodegradability and Efficacy of Semiconducting Polymer Nanoparticles for Photoacoustic Imaging and Photothermal Therapy

    Authors: , , , , , , , , - ACS Nano 2018 cited by 352

  16. Radiolabeling nanomaterials for multimodality imaging: New insights into nuclear medicine and cancer diagnosis

    Authors: , , , , - Biomaterials 2019 cited by 183

  17. Radiotherapy-Triggered In Situ Tumor Vaccination Boosts Checkpoint Blockaded Immune Response via Antigen-Capturing Nanoadjuvants

    Authors: , , , , , , , , , - ACS Nano 2023 cited by 33

  18. Ambient Aqueous Synthesis of Ultrasmall PEGylated Cu2−xSe Nanoparticles as a Multifunctional Theranostic Agent for Multimodal Imaging Guided Photothermal Therapy of Cancer

    Authors: , , , , , , , , , - Advanced Materials 2016 cited by 330

  19. BSA‐Mediated Synthesis of Bismuth Sulfide Nanotheranostic Agents for Tumor Multimodal Imaging and Thermoradiotherapy

    Authors: , , , , , , , , , , , , - Advanced Functional Materials 2016 cited by 303

  20. Anchoring Group Effects of Surface Ligands on Magnetic Properties of Fe3O4 Nanoparticles: Towards High Performance MRI Contrast Agents

    Authors: , , , , , , , , , - Advanced Materials 2014 cited by 230

  21. Ultrasmall superparamagnetic iron oxide nanoparticles: A next generation contrast agent for magnetic resonance imaging

    Authors: , , , , , , - Wiley Interdisciplinary Reviews Nanomedicine and Nanobiotechnology 2021 cited by 138

  22. Optical/MRI dual-modality imaging of M1 macrophage polarization in atherosclerotic plaque with MARCO-targeted upconversion luminescence probe

    Authors: , , , , , , , , , , - Biomaterials 2019 cited by 65

  23. DreamActor-H1: High-Fidelity Human-Product Demonstration Video Generation via Motion-designed Diffusion Transformers

    Authors: , , , , , , , , - ArXiv.org, CoRR 2025 cited by 15

  24. Boosting H2O2‐Guided Chemodynamic Therapy of Cancer by Enhancing Reaction Kinetics through Versatile Biomimetic Fenton Nanocatalysts and the Second Near‐Infrared Light Irradiation

    Authors: , , , , , , , , - Advanced Functional Materials 2019 cited by 229