双金属
材料科学
光热治疗
兴奋剂
表面等离子共振
基质(水族馆)
光化学
纳米技术
催化作用
铈
等离子体子
吸收(声学)
组合化学
氧化物
纳米壳
氧化铈
光电流
钼
辐照
金属
共轭体系
金属有机骨架
配体(生物化学)
多酚
癌症治疗
苯醌
氮氧化物
载流子
作者
Xinyu Zhang,Lei Zhong,Shuang Liu,Le Zhang,Chunsheng Li,Qiang Wang,Jiawei Qu,Meng Wang,Hao Sun,Jian Liang,Jiating Xu,Xinglu Zhou
标识
DOI:10.1002/adfm.202518003
摘要
Abstract Molybdenum oxide (MoO x ), which exhibits localized surface plasmon resonance and intrinsic enzyme‐mimicking activity, holds great promise as a photoresponsive nanozyme in cancer therapy. However, its narrow light absorption range and poor charge separation hinder its catalytic performance. Here, cerium (Ce) doping and hydrogenation narrow the bandgap of MoO x from 3.02 to 1.14 eV, enabling efficient photocarrier separation under 1064 nm irradiation and promoting O 2 to 1 O 2 conversion. Ce doping introduces Mo−O−Ce bridges, facilitating charge transfer via d–f orbital hybridization and modulating the d‐band center, which optimizes intermediate desorption at Mo sites and enhances the peroxidase‐like activity for •OH generation. Simultaneously, the intrinsic catalase‐like function generates O 2 , that supplies the substrate for photodynamic therapy (PDT). The hydrogenated MoO x is coated with a metal polyphenol network composed of Ce and epigallocatechin gallate, enabling it to reach the tumor sites safely. The final nanozyme system obtains under 1064 nm irradiation (denoted as HCMM@E‐Ce) achieves synergistic photothermal therapy, PDT, and enzymatic therapy, resulting in effective tumor suppression. This Ce 3+ ‐coordinated polyphenol and hydrogenation coarmed nanozyme platform integrates electronic structure modulation and tumor‐specific delivery, offering a promising strategy for precise and efficient cancer therapy.
科研通智能强力驱动
Strongly Powered by AbleSci AI