光热治疗
应变工程
拉伤
极限抗拉强度
催化作用
无定形固体
体内
化学
拉伸应变
材料科学
癌症研究
纳米技术
生物物理学
复合材料
结晶学
光电子学
医学
生物
生物化学
生物技术
硅
内科学
作者
Jiandong Wu,Qihui Liu,Dongxu Jiao,Bin Tian,Qiong Wu,Xin Chang,Hongyu Chu,Shan Jiang,Qi Yang,Tao Liu,Yue Zhang,Wei Zhang,Jinchang Fan,Xiaoqiang Cui,Fangfang Chen
标识
DOI:10.1002/anie.202403203
摘要
Abstract Nanozymes have demonstrated significant potential in combating malignant tumor proliferation through catalytic therapy. However, the therapeutic effect is often limited by insufficient catalytic performance. In this study, we propose the utilization of strain engineering in metallenes to fully expose the active regions due to their ultrathin nature. Here, we present the first report on a novel tensile strain‐mediated local amorphous RhRu (la‐RhRu) bimetallene with exceptional intrinsic photothermal effect and photo‐enhanced multiple enzyme‐like activities. Through geometric phase analysis, electron diffraction profile, and X‐ray diffraction, it is revealed that crystalline‐amorphous heterophase boundaries can generate approximately 2 % tensile strain in the bimetallene. The ultrathin structure and in‐plane strain of the bimetallene induce an amplified strain effect. Both experimental and theoretical evidence support the notion that tensile strain promotes multiple enzyme‐like activities. Functioning as a tumor microenvironment (TME)‐responsive nanozyme, la‐RhRu exhibits remarkable therapeutic efficacy both in vitro and in vivo. This work highlights the tremendous potential of atomic‐scale tensile strain engineering strategy in enhancing tumor catalytic therapy.
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