物理化学学报 >> 2026, Vol. 42 >> Issue (11): 100407.doi: 10.1016/j.actphy.2026.100407

论文 上一篇    

嵌入镍纳米颗粒的生物相容性空心碳纳米纤维中应变梯度与表面应力介导的电磁吸收

高峰1, 郭雨鑫4, 刘雲龙3, 李圣元2, 李海丰5, 李佳兴1, 李赛楠1, 赵永鹏3, 贺改花2, 任振堃1   

  1. 1 锦州医科大学附属第三医院, 辽宁锦州 121000;
    2 锦州医科大学药学院, 辽宁 锦州 121000;
    3 四川农业大学机电工程学院, 四川雅安 625000;
    4 中国医科大学药学院, 辽宁 沈阳 110122;
    5 湖北汽车工业学院汽车材料学院, 湖北十堰 442002
  • 收稿日期:2026-06-27 修回日期:2026-08-20 录用日期:2026-08-26 发布日期:2026-09-29
  • 通讯作者: 赵永鹏, 贺改花, 任振堃 E-mail:zhaoyp@sicau.edu.cn;ghHe2020@yeah.net;renzk@jzmu.edu.cn
  • 基金资助:
    本研究得到辽宁省科技计划联合项目(2024012152-JH4/4800,2024-MSLH-155);国家自然科学基金(52402293,52402118)以及四川省自然科学基金(2026NSFSC0358)的支持。

Strain gradient and surface stress-mediated electromagnetic absorption in biocompatible hollow carbon nanofibers embedded with Ni nanoparticles

Feng Gao1, Yuxin Guo4, Yunlong Liu3, Shengyuan Li2, Haifeng Li5, Jiaxin Li1, Sainan Li1, Yongpeng Zhao3, Gaihua He2, Zhenkun Ren1   

  1. 1 The Third Affiliated Hospital of Jinzhou Medical University, Jinzhou 121000, Liaoning Province, China;
    2 School of Pharmacy, Jinzhou Medical University, Jinzhou 121000, Liaoning Province, China;
    3 College of Mechanical and Electrical Engineering, Sichuan Agricultural University, Ya'an 625000, Sichuan Province, China;
    4 School of Pharmacy, China Medical University, Shenyang 110122, Liaoning Province, China;
    5 School of Automotive Materials, Hubei University of Automotive Technology, Shiyan 442002, Hubei Province, China
  • Received:2026-06-27 Revised:2026-08-20 Accepted:2026-08-26 Published:2026-09-29
  • Contact: Yongpeng Zhao, Gaihua He, Zhenkun Ren E-mail:zhaoyp@sicau.edu.cn;ghHe2020@yeah.net;renzk@jzmu.edu.cn

摘要: 开发兼具强衰减能力和良好生物相容性的高性能电磁波(EMW)吸收材料,对于可穿戴电子、植入式设备和便携式医疗设备等新兴应用日益重要。本研究通过静电纺丝结合牺牲模板法及后续高温碳化,制备了一类具有精确曲率控制的中空磁性碳纳米纤维(Ni/HCNFs)调节SiO2米球的直径,系统调控了纳米纤维的内部空腔尺寸和几何曲率。优化后的具有300 nm空腔的Ni/HCNFs表现出优异的反射损耗最小值-58.7 dB和有效吸收带宽5.28 GHz。增强的电磁波吸收归因于阻抗匹配优化、中空空腔内多次反射以及由曲率诱导的晶格应变梯度和表面应力场引起的界面/偶极极化损耗增强的协同效应,这已通过密度泛函理论计算和有限元模拟得到验证。此外,初步生物相容性评估表明,Ni/HCNFs在与成纤维细胞共培养时表现出低细胞毒性和良好的细胞活力,表明其作为未来生物集成电子系统中安全高效的电磁波吸收材料的潜力。这项工作不仅为设计轻质高性能电磁波吸收材料提供了稳健策略,也为它们在生物相容性、靶向微波热疗载体和环境适应性场景中的应用开辟了新途径。

关键词: 中空碳纳米纤维, 曲率工程, 电磁波吸收, 晶格应变梯度, 生物相容性

Abstract: The development of high-performance electromagnetic wave (EMW) absorbing materials with both strong attenuation capability and favorable biocompatibility is increasingly important for emerging applications in wearable electronics, implantable devices, and portable medical equipment. In this study, we present a class of hollow magnetic carbon nanofibers (Ni/HCNFs) with precisely controlled curvature, fabricated via electrospinning combined with sacrificial template method and subsequent high-temperature carbonization. By tuning the diameter of SiO2 nanospheres, the internal cavity size and geometric curvature of the nanofibers are systematically regulated. The optimized Ni/HCNFs with 300 nm cavities exhibit an outstanding minimum reflection loss of -58.7 dB and an effective absorption bandwidth of 5.28 GHz. The enhanced EMW absorption is attributed to the synergistic effects of impedance matching optimization, multiple reflections within hollow cavities, and intensified interfacial/dipolar polarization losses originating from curvature-induced lattice strain gradients and surface stress fields, as verified by density functional theory calculations and finite element simulations. Furthermore, preliminary biocompatibility assessments indicate that the Ni/HCNFs exhibit low cytotoxicity and good cell viability when co-cultured with fibroblast cells, suggesting their potential as safe and efficient EMW absorbers for future bio-integrated electronic systems. This work not only provides a robust strategy for designing lightweight and high-performance EMW absorbing materials but also opens a new avenue for their application in biocompatible, targeting microwave hyperthermia carrier and environmentally adaptive scenarios.

Key words: Hollow carbon nanofibers, Curvature engineering, Electromagnetic wave absorption, Lattice strain gradient, Biocompatibility