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基于金属纳米颗粒的热等离激元学及其应用(特邀)

Thermoplasmonics Based on Metal Nanoparticles and Its Applications(Invited)

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【作者】 丁涛李斯坦刘音奇宋汶泽林欣语

【Author】 Ding Tao;Li Sitan;Liu Yinqi;Song Wenze;Lin Xinyu;Key Laboratory of Artificial Micro-and Nano-Structures of Ministry of Education, School of Physics and Technology, Wuhan University;

【通讯作者】 丁涛;

【机构】 武汉大学物理科学与技术学院人工微结构教育部重点实验室

【摘要】 近些年来,金属纳米颗粒的光热效应在生物医学、能源环境、材料化工等领域展现出重要的应用前景。本综述从金属纳米颗粒光热效应的物理起源展开论述,介绍金属纳米颗粒光热效应的理论模型和实验测量方法,系统地总结近些年来金属纳米颗粒的光热效应在癌症治疗、生物成像与传感、能源、光热催化、纳米加工与操控等研究领域中的应用和进展,最后总结全文,对未来热等离激元学的发展方向与应用提出展望。

【Abstract】 Significance The photothermal effect, a process that integrates principles from optics, thermodynamics, and quantum mechanics, has emerged as an important research area with broad applications, including photothermal therapy, imaging,biosensing, catalysis, energy conversion, and nanomanipulation. Metallic nanoparticles, with their high surface area and localized surface plasmon resonance(LSPR), significantly enhance photothermal conversion efficiency, offering potential in cancer treatment, high-resolution bioimaging, localized chemical reactions, and precise micro/nanofabrication and manipulation.Progress While the basic concept and theory of thermoplasmonics have been well established decades ago(Fig. 1),accurately determining nanoscale temperatures remains a challenge, despite several developed strategies(Fig. 2).Applications of photothermal effects using plasmonic nanoparticles have advanced significantly, especially in areas like high-resolution bioimaging, cancer treatment, energy harvesting, seawater desalination, and precise nanomanipulation and fabrication. Significant advancements have been made with the development of plasmonic nanoparticles that operate in the long-wavelength near-infrared(NIR) region, especially NIR-II(1000-1700 nm), which allows for selective cancer cell destruction in the brain while minimizing trauma from procedures like craniotomy. Hybrid plasmonic nanoparticles with high photothermal efficiency and drug-loading capability are also increasingly attractive for photothermal applications(Fig. 3). In photothermal imaging, the development of photothermal microscopy [Fig. 4(a)] has advanced to achieve photothermal circular dichroism(PT CD) imaging, offering a simple method for chiral discrimination of nanoscaled chiral objects [Fig. 4(b)]. In biosensing, the photothermal effect enhances the speed of nuclei acid detection for viruses like the coronavirus, significantly reducing false-negative rates [Fig. 4(d)]. In photothermal catalysis, research has focused on fuel generation through methanol and CO2 hydrogenation, facilitated by plasmonic nanoparticles [Figs. 5(a),(b)]. In addition,seawater desalination using plasmonic nanoparticles and an anodic aluminum oxide(AAO) template has proven to be a more efficient method [Fig. 5(c),(d)]. Photothermoelectric conversion efficiency is further improved by decorating carbon nanotubes with gold nanoparticles(AuNPs) [Figs. 5(e),(f)]. In photothermal-assisted nanomanipulation, new manipulation principles based on photothermal gradients have extended beyond photothermophoresis to include thermoelectrophoresis [Fig. 6(a)]. Fast-acting actuation using phase change materials has also emerged [Fig. 6(b)]. Direct particle manipulation on solid substrates is achieved through either interfacial surfactants [Fig. 6(c)] or photoacoustic surface waves [Figs. 6(d)-(f)].Other light-triggered propulsion systems based on nanoparticle jetting mechanisms can also mobilize nano-objects on solid surfaces [Fig. 6(g)]. In photothermal-assisted nanofabrication, the synergy between optical forces and photothermal effects leads to controlled patterning of colloidal particles [Fig. 7(a)] and laser-directed etching in both polymer and glass substrates [Fig. 7(b)]. In addition, the photothermal effect enables controlled nanoscale material growth around plasmonic nanoparticles, facilitating encapsulation with inorganic and polymer materials [Figs. 7(c),(d)].Conclusions and Prospects The high photothermal conversion efficiency of metallic materials presents numerous opportunities across various fields. However, challenges remain in improving the efficiency and accuracy of the photothermal effect, necessitating the discovery of new materials with enhanced structural designs and more accurate control at targeted locations. The development of more stable and accurate nanothermometers is also crucial. Furthermore,scalable and cost-effective fabrication of photothermal materials is essential for advancing industrial applications. We believe in significant breakthroughs and progress in this field over the next decade, leading to a series of new applications.

【基金】 国家重点研发计划(2020YFA0211300);国家自然科学基金(12374356)
  • 【文献出处】 光学学报 ,Acta Optica Sinica , 编辑部邮箱 ,2024年19期
  • 【分类号】TB383.1;TG111
  • 【下载频次】190
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