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苗小飞

发布时间:2026-08-27    点击数量:

苗小飞

助理研究员

xiaofei-miao@fyust.edu.cn

研究领域:

电化学储能材料与器件的设计开发和产业化应用

个人简介

中国科学院大学材料物理与化学专业博士,长期从事电化学储能与电催化领域的基础研究与产业化应用,研究内容涵盖超级电容器、锂离子电池、锌离子电池及电催化等方向。在先进储能与催化材料的设计、可控制备及综合应用方面,具备扎实的专业知识和丰富的实践经验。作为核心成员参与中国科学院STS重点项目、福建省“揭榜挂帅”重大专项等多项国家级及省部级课题。

教育背景

2022年中国科学院大学 材料物理与化学 工学博士

工作经历    

2026.01  至 今:福耀科技大学 新材料与新能源学院 助理研究员

2022.11-2025.10:深圳大学 博士后

科研项目经历

1.福建省科技项目,福厦泉国家自主创新示范区新型储能用高端石墨负极技术协同创新平台项目,200万元,在研,主持;

2.福建省工信息厅项目,人工智能用小型化、低功耗高分子固体铝电容器的关键技术研发及产业化,200万元,在研,参与;

参与发表论文

[1] X. Miao, J. Chen, X. Zheng, H. Li, L. Zhang, Bifunctional Cationic Polyelectrolyte Additive Enables Dendrite-free and Shuttle-Suppressed Zinc-Bromine Batteries, Energy Storage Mater. (2025) 104620.

[2] X. Zheng, X. Miao (co-first), Z. Yang, Z. Luo, J. Yu, H. Li, L. Zhang, Structurally Engineered CNT-Confined MnxRu1-xO2 Catalysts for Efficient Acidic Oxygen Evolution at Low Ru Loading, Chem. Sci. 16 (2025) 19820-19829.

[3] M. Liao, Y. Zhang, X. Miao, K. Liang, Z. Song, L. Zhang, Amorphous‐Engineered Pt Asymmetric Electric Fields for Enhanced Power Density in Fuel Cells, Adv. Funct. Mater. (2025) e18956.

[4] X. Miao, J. Chen, C. Zhong, J. Tong, H. Yang, X. Yang, X. Qiao, Z. Song, L. Zhang, Rational Design of Hierarchical Structure Electrodes to Suppress Shuttle Diffusion in Redox-Enhanced Supercapacitors, ACS Appl. Mater. Interfaces 16 (2024) 69303–69315.

[5] X. Miao, Q. Chen, Y. Liu, X. Zhang, Y. Chen, J. Lin, S. Chen, Y. Zhang, Performance comparison of electro-polymerized polypyrrole and polyaniline as cathodes for iodine redox reaction in zinc-iodine batteries, Electrochim. Acta 415 (2022) 140206.

[6] C. Lin, Y. Liu, X. Zhang, X. Miao, Y. Chen, S. Chen, Y. Zhang, Regulating the plating process of zinc with highly efficient additive for long-life zinc anode, J. Power Sources 549 (2022) 232078.

[7] Y. Liu, Y. Chen, X. Zhang, C. Lin, H. Zhang, X. Miao, J. Lin, S. Chen, Y. Zhang, A high-voltage aqueous rechargeable zinc-polyaniline hybrid battery achieved by decoupling alkali–acid electrolyte, Chem. Eng. J. 444 (2022) 136478.

[8] X. Miao, X. Zhang, S. Chen, Y. Liu, Y. Chen, J. Lin, Q. Chen, Y. Zhang, Dual-redox enhanced supercapacitors with sodium anthraquinone-2-sulfonate and potassium bromide, Electrochim. Acta 374 (2021) 137889.

[9] Y. Liu, X. Miao, X. Zhang, S. Chen, Y. Chen, J. Lin, W. Wang, Y. Zhang, High performance flexible quasi-solid-state zinc-ion hybrid supercapacitors enable by electrode potential adjustment, J. Power Sources 495 (2021) 229789.

[10] Q. Chen, X. Miao, Y. Liu, X. Zhang, S. Chen, Z. Chen, Y. Chen, J. Lin, Y. Zhang, Polyaniline electropolymerized within template of vertically ordered polyvinyl alcohol as electrodes of flexible supercapacitors with long cycle life, Electrochim. Acta 390 (2021) 138819.

[11] J. Cheng, Y. Liu, X. Zhang, X. Miao, Y. Chen, S. Chen, J. Lin, Y. Zhang, Structure engineering in interconnected porous hollow carbon spheres with superior rate capability for supercapacitors and lithium-sulfur batteries, Chem. Eng. J. 419 (2021) 129649.

[12] Y. Liu, J. Lin, X. Miao, Y. Chen, X. Zhang, S. Chen, C. Chen, W. Wang, Y. Zhang, A Simple Aqueous Battery with Potential for Scalable Energy Storage Based on MnO2 Deposition at the Cathode and a Quinoid‐Modified Activated Carbon Anode, ChemElectroChem 7 (2020) 2869–2876.

[13] J. Fang, X. Miao, X. Zhang, Y. Liu, S. Chen, Y. Chen, W. Wang, Y. Zhang, Enhancing the capacity of activated carbon electrodes by a redox mediator pair for the fabrication of flexible asymmetric solid-state supercapacitors, J. Power Sources 418 (2019) 24–32.

[14] Y. Liu, X. Miao, X. Zhang, S. Chen, Y. Chen, J. Cheng, W. Wang, Y. Zhang, Targeted interfacial anchoring and wrapping of Fe3O4 nanoparticles onto graphene by PPy-derived-carbon for stable lithium-ion battery anodes, Mater. Res. Bull. 111 (2019) 170–176.

[15] D. Li, X. Zhang, X. Miao, Y. Liu, S. Chen, Y. Chen, W. Wang, Y. Zhang, Solid-state synthesized Li4Ti5O12 for ultrafast lithium ion storage enabled by carbon-coating induced particle size tailoring, J. Alloys Compd. 797 (2019) 1258–1267.

[16] J. Cheng, X. Zhang, X. Miao, C. Chen, Y. Liu, Y. Chen, J. Lin, S. Chen, W. Wang, Y. Zhang, Interconnected hollow carbon spheres with tunable wall-thickness for improving the high-rate performance of energy storage devices, Electrochim. Acta 312 (2019) 358–368.

[17] W. Feng, X. Li, S. Lin, X. Miao, W. Wang, Y. Zhang, Enhancing the Efficiency of Graphene Oxide Reduction in Low-Power Digital Video Disc Drives by a Simple Precursor Heat Treatment, ACS Appl. Mater. Interfaces 11 (2019) 48162–48171.

[18] S. Lin, W. Feng, X. Miao, X. Zhang, S. Chen, Y. Chen, W. Wang, Y. Zhang, A flexible and highly sensitive nonenzymatic glucose sensor based on DVD-laser scribed graphene substrate, Biosens. Bioelectron. 110 (2018) 89–96.

[19] J. Fang, X. Zhang, X. Miao, Y. Liu, S. Chen, Y. Chen, J. Cheng, W. Wang, Y. Zhang, A phenylenediamine-mediated organic electrolyte for high performance graphene-hydrogel based supercapacitors, Electrochim. Acta 273 (2018) 495–501.

[20] Y. Liu, X. Miao, J. Fang, X. Zhang, S. Chen, W. Li, W. Feng, Y. Chen, W. Wang, Y. Zhang, Layered-MnO2 Nanosheet Grown on Nitrogen-Doped Graphene Template as a Composite Cathode for Flexible Solid-State Asymmetric Supercapacitor, ACS Appl. Mater. Interfaces 8 (2016) 5251–5260.

参与授权专利

1. 一种石墨烯复合材料及其制备方法,CN108232139B。

2. 一类铁氧团簇及其合成方法与应用,CN109096343B。

3. 一种柔性集流体及其制备方法和应用,CN105140047B。

4. 一种含石墨烯纤维的电池电极及其制备方法和应用,CN107069033B。

5. 一种电池型超级电容器及其用途,CN109994322B。

6. 一种铅膏、电池极板及其制备方法和应用,CN111224097B。

7. 一种电极嵌锌处理方法及其在电池型超级电容器制备中的应用,CN110010373B。

8. 一种增强型超级电容器及其制备方法,CN107919234B。

9. 一种非对称超级电容器及其制备方法,CN107887173B。

10. 一种增强型石墨烯基超级电容器及其制备方法,CN107845506B。

11. 一种复合电极及其制备方法和在超级电容器中的应用,CN105448534B。

12. 稀土掺杂钛酸锂电极材料及其制备方法,CN109742387B。

13. 一种具有复合固体电解质的固体电解电容器及其制备方法,CN106710882B