Synthesis of Multifunctional Plasmonic Nanodarts through One‐End Deposition on Gold Nanobipyramids for Tumor Organoid Ablation and Antimicrobial Applications

Author:

Zhang Han1,Lu Yao2,Zhang Rui1,Tang Zhe1,Lam Shiu Hei2,Zhu Jinjin3,Fu Runfang2,Hu Yeting4,Iqbal Muhammad Zubair1,Kong Xiangdong1,Wang Jianfang2ORCID

Affiliation:

1. Institute of Smart Biomedical Materials School of Materials Science and Engineering Zhejiang Sci‐Tech University Hangzhou 310018 China

2. Department of Physics The Chinese University of Hong Kong Shatin Hong Kong SAR 999077 China

3. Department of Orthopaedic Surgery Sir Run Run Shaw Hospital Zhejiang University School of Medicine & Key Laboratory of Musculoskeletal System Degeneration and Regeneration Translational Research of Zhejiang Hangzhou 310016 China

4. Department of Colorectal Surgery and Oncology Key Laboratory of Cancer Prevention and Intervention The Second Affiliated Hospital Zhejiang University School of Medicine Hangzhou 310030 China

Abstract

AbstractPlasmonic nanomaterials with multiple components and designed structures show diverse properties and functions owing to the synergistic effects of the different components. Engineering the compositional and structural complexity of plasmonic nanomaterials is a powerful technique for expanding their range of applications. A facile approach to an unprecedented dart‐like type of nanostructure with AgPd bimetal selectively deposited at one end of Au nanobipyramids, forming AgPd nanodarts, is reported here. The synthetic process involves both galvanic replacement and Ostwald ripening. The morphological evolution of the AgPd nanodarts is thoroughly investigated and the growth mechanism is put forward. The as‐obtained AgPd nanodarts exhibit an outstanding photothermal conversion efficiency and peroxidase activity, which make them powerful for photothermally–catalytically combined tumor organoid ablation. In addition, two types of AgPd nanodart‐derived single‐end nanostructures, AgPd@ZIF‐8, and AgPd@TiO2 nanodarts, are prepared for the first time. The ZIF‐8 and TiO2 shell are preferentially coated at the AgPd end of the AgPd nanodarts, respectively. Both AgPd@ZIF‐8 and AgPd@TiO2 nanodarts show superior antimicrobial activities. The protocol and concept of modulating the structure of the nanodarts in this work can be extended to the development of a new class of plasmonic nanostructures with multifunctionalities.

Funder

Key Research and Development Program of Zhejiang Province

Faculty of Science, Chinese University of Hong Kong

Zhejiang Sci-Tech University

Publisher

Wiley

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