无机材料学报

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载银纳米碳点的合成表征及其抗菌性能研究

李文龙1,2, 马文燕1, 陈航榕1,2   

  1. 1.国科大杭州高等研究院 化学与材料科学学院, 杭州 310024;
    2.中国科学院 上海硅酸盐研究所, 上海 200050
  • 收稿日期:2026-07-14 修回日期:2026-09-11
  • 通讯作者: 马文燕, 博士后. E-mail: wyma@ucas.ac.cn
  • 作者简介:李文龙(1999-), 男, 硕士研究生. E-mail: liwenlong23@mails.ucas.ac.cn
  • 基金资助:
    杭州市博士后科研项目(Grant No. E4BH3B0303)

Synthesis, Characterization and Antibacterial Property of Ag-loaded Carbon Dots

LI Wenlong1,2, MA Wenyan1, CHEN Hangrong1,2   

  1. 1. School of Chemistry and Materials Science, Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou 310024, China;
    2. Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
  • Received:2026-07-14 Revised:2026-09-11
  • Contact: MA Wenyan, postdoctor. E-mail: wyma@ucas.ac.cn
  • Supported by:
    Hangzhou Postdoctoral Research Project (Grant No.E4BH3B0303)

摘要: 银纳米颗粒(Silver Nanoparticles, Ag NPs)已广泛应用于各类抗菌领域, 但其制备过程通常需要外加还原剂, 存在工艺复杂、成本较高且易团聚等问题。本研究利用纳米碳点(Carbon Dots, CDs)自身还原性, 采用一步温和水浴法, 将AgNO3原位还原并负载于CDs表面。所制备的载银纳米碳点(Ag-CDs)分散性好、粒径均一(小于10 nm), 同时其表面呈负电性, 有利于降低对正常细胞的潜在毒性; 其中Ag的负载量为9.2%(质量分数), 主要以Ag0与Ag2O物种形式存在, 后者在水溶液中可实现Ag+缓慢释放, 维持长效抗菌活性的同时提高材料的生物安全性。所合成的Ag-CDs表现出良好的近红外II区光热转换性能, Ag-CDs光热转换效率达32.43%。抗菌实验结果表明, Ag-CDs对大肠杆菌和金黄色葡萄球菌均具有显著的抗菌和生物膜清除能力; 在近红外光(980 nm激光)照射下, CDs介导的光热效应与Ag+释放产生协同作用, 进一步增强抗菌和抗生物膜性能。本研究可为低成本、多模态高效抗菌材料的设计提供有益参考, 在复杂感染创面修复、医用贴剂等多种抗菌场景具有良好的应用潜力。

关键词: 碳点, 银纳米颗粒, 光热效应, 抗菌

Abstract: Silver nanoparticles (Ag NPs) have been widely applied in various antibacterial fields. However, their preparation generally requires additional reducing agent and suffers from complicated procedures, high production costs, and severe aggregation. In this study, carbon dots (CDs) with intrinsic reducing capability were employed to achieve the in-situ reduction of AgNO3 and subsequent anchoring of Ag species onto the surface of CDs through a facile one-step water bath method. As a result, silver-loaded CDs (Ag-CDs) with excellent dispersibility, uniform particle size (<10 nm), and negatively-charged surface were successfully synthesized. This negatively charged feature is beneficial for alleviating potential toxicity toward normal cells, suggesting high biosafety. The Ag content in Ag-CDs was calculated to be 9.2% (in mass), mainly existing as Ag0 and Ag2O. The sustained Ag+ release was found in aqueous solution which endows Ag-CDs with long-term antibacterial activity. Moreover, the obtained Ag-CDs exhibited excellent photothermal performance in the second near-infrared (NIR-II) window with a photothermal conversion efficiency of 32.43%. Further antibacterial investigations demonstrated that Ag-CDs possessed remarkable antibacterial and biofilm eradication capabilities against Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus). Upon near-infrared irradiation with 980 nm laser, the CDs mediated photothermal effect in synergy with Ag⁺ release, further enhanced antibacterial and antibiofilm performances. This study provides a valuable insight into the design of low-cost, multifunctional, and highly efficient antibacterial materials, showing a promising potential for their applications in infected wound healing, antibacterial medical dressings, and other biomedical antibacterial applications.

Key words: carbon dot, silver nanoparticle, photothermal effect, antibacterial

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