Chen Tianyou, Qiu Meishuang, Peng Yan, Yi Changfeng, Xu Zushun
Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei Key Laboratory of Polymer Materials, School of Materials Science and Engineering, Hubei University, Wuhan, 430062, China.
Small. 2023 Nov;19(44):e2303282. doi: 10.1002/smll.202303282. Epub 2023 Jul 6.
Inorganic nanocrystals possess unique physicochemical properties compared to their bulk counterparts. Stabilizing agents are commonly used for the preparation of inorganic nanocrystals with controllable properties. Particularly, colloidal polymers have emerged as general and robust templates for in situ formation and confinement of inorganic nanocrystals. In addition to templating and stabilizing inorganic nanocrystals, colloidal polymers can tailor their physicochemical properties such as size, shape, structure, composition, surface chemistry, and so on. By incorporating functional groups into colloidal polymers, desired functions can be integrated with inorganic nanocrystals, advancing their potential applications. Here, recent advances in the colloidal polymer-templated formation of inorganic nanocrystals are reviewed. Seven types of colloidal polymers, including dendrimer, polymer micelle, stare-like block polymer, bottlebrush polymer, spherical polyelectrolyte brush, microgel, and single-chain nanoparticle, have been extensively applied for the synthesis of inorganic nanocrystals. Different strategies for the development of these colloidal polymer-templated inorganic nanocrystals are summarized. Then, their emerging applications in the fields of catalysis, biomedicine, solar cells, sensing, light-emitting diodes, and lithium-ion batteries are highlighted. Last, the remaining issues and future directions are discussed. This review will stimulate the development and application of colloidal polymer-templated inorganic nanocrystals.
与块状无机晶体相比,无机纳米晶体具有独特的物理化学性质。稳定剂通常用于制备具有可控性质的无机纳米晶体。特别地,胶体聚合物已成为原位形成和限制无机纳米晶体的通用且强大的模板。除了对无机纳米晶体进行模板化和稳定化之外,胶体聚合物还可以调整其物理化学性质,如尺寸、形状、结构、组成、表面化学等。通过将官能团引入胶体聚合物中,可以将所需功能与无机纳米晶体整合,从而推进其潜在应用。在此,综述了胶体聚合物模板法制备无机纳米晶体的最新进展。七种类型的胶体聚合物,包括树枝状聚合物、聚合物胶束、星状嵌段聚合物、刷状聚合物、球形聚电解质刷、微凝胶和单链纳米粒子,已被广泛应用于无机纳米晶体的合成。总结了这些胶体聚合物模板化无机纳米晶体开发的不同策略。然后,突出了它们在催化、生物医学、太阳能电池、传感、发光二极管和锂离子电池等领域的新兴应用。最后,讨论了剩余问题和未来方向。本综述将推动胶体聚合物模板化无机纳米晶体的开发和应用。