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后摩尔时代新材料与交叉学科蓬勃发展,生物纳米酶、电催化、固态储氢、MAX 相材料、AI 材料学、气体分离膜等方向不断产出重要成果。本次筛选 2025‑2026 年发表于 Nano‑Micro Letters 八篇高影响力论文,覆盖单原子纳米酶稳定性策略、生物质碳双功能氧电催化、钒钛基固态储氢合金、MAX 系列材料综述、人工智能赋能材料科学、本征微孔聚合物气体分离膜、镍铁基析氧电催化全方向,兼顾综述深度与原创工作创新,涵盖材料合成预测、轨道调控、器件构筑、性能优化、瓶颈剖析与未来展望,可为新材料设计、催化方向科研人员快速研读、参考借鉴。这些文章分别来自东南大学张宇/武昊安&郑大一附院荆自伟团队、南京林业大学范孟孟&上海大学王亮团队、电子科大刘宗文团队、吉林师范大学鲁铭/韩文娟/徐仕翀&东南大学应国兵团队、哈佛大学张兴才团队、英国曼彻斯特大学Xiaolei Fan/Patricia Gorgojo团队、武汉大学罗威&武汉纺织大学姚娜/包海峰团队。
1. Innovative Strategies to Overcome Stability Challenges of Single-Atom Nanozymes (REVIEW)
Rong Guo, Qiuzheng Du, Yaping He, Haoan Wu, Yu Zhang and Ziwei Jing
Nano-Micro Lett. 18, 100 (2026).
https://doi.org/10.1007/s40820-025-01939-2

2. Joule Heating-Driven sp₂-C Domains Modulation in Biomass Carbon for High-Performance Bifunctional Oxygen Electrocatalysis (ARTICLE)
中文题目:秒级焦耳热处理技术调控生物质碳材料晶域,实现高效双功能氧电催化
Jiawei He, Yuying Zhao, Yang Li, Qixin Yuan, Yuhan Wu, Kui Wang, Kang Sun, Jingjie Wu, Jianchun Jiang, Baohua Zhang, Liang Wang and Mengmeng Fan
Nano-Micro Lett. 17, 221 (2025).
https://doi.org/10.1007/s40820-025-01725-0

3. V–Ti-Based Solid Solution Alloys for Solid-State Hydrogen Storage
(REVIEW)
中文题目:钒钛基固溶体合金在固态氢存储中的应用
Shaoyang Shen, Yongan Li, Liuzhang Ouyang, Lan Zhang, Min Zhu and Zongwen Liu
Nano-Micro Lett. 17, 175 (2025).
https://doi.org/10.1007/s40820-025-01672-w

4. A Review of MAX Series Materials: From Diversity, Synthesis, Prediction, Properties Oriented to Functions (REVIEW)
中文题目:MAX系列材料的多样性、合成、预测、性质及功能应用
Jian Zhang, Ru Jia, Kar Ban Tan, Jiaming Li, Shichong Xu, Guobing Ying, Wenjuan Han and Ming Lu
Nano-Micro Lett. 17, 173 (2025).
https://doi.org/10.1007/s40820-025-01673-9

5. Artificial Intelligence-Powered Materials Science (REVIEW)
中文题目:人工智能驱动的材料科学
Xiaopeng Bai and Xingcai Zhang
Nano-Micro Lett. 17, 135 (2025).
https://doi.org/10.1007/s40820-024-01634-8

6. Membranes of Polymer of Intrinsic Microporosity PIM-1 for Gas Separation: Modification Strategies and Meta-Analysis (REVIEW)
Boya Qiu, Yong Gao, Patricia Gorgojo and Xiaolei Fan
Nano-Micro Lett. 17, 114 (2025).
https://doi.org/10.1007/s40820-024-01610-2

7. Boosting Oxygen Evolution Reaction Performance on NiFe-Based Catalysts Through d-Orbital Hybridization (Article)
Xing Wang, Wei Pi, Sheng Hu, Haifeng Bao, Na Yao and Wei Luo
Nano-Micro Lett. 17, 11 (2025).
https://doi.org/10.1007/s40820-024-01528-9

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