材料科学
异质结
氧气
过氧化氢
化学工程
催化作用
单线态氧
水杨酸
活性氧
光电子学
氧化物
纳米技术
纳米棒
纳米颗粒
制氢
光化学
电子顺磁共振
纳米晶材料
激发态
钝化
激进的
肿瘤微环境
格子(音乐)
拉伸应变
作者
Dong Wang,Haoyang Li,Liang Fang,Xun Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-02-23
卷期号:20 (9): 8000-8012
标识
DOI:10.1021/acsnano.6c00143
摘要
The landscape of nanocatalytic therapy and sonodynamic therapy (SDT) is confronted with formidable challenges, including the rapid consumption of nonrenewable Fenton-like nanocatalysts, inefficient carrier separation in sonosensitizers, and hypoxia in tumor microenvironment (TME). Herein, we develop high-entropy oxide (HEO)-phosphomolybdic acid (PMA) ultrathin nanoleaves in subnanoscale (SHPL), featuring periodic heterounit alternation of HEO nuclei and PMA clusters with obvious lattice tensile strain. Notably, the lattice tensile strain in this leaf structure reduces hydrogen peroxide (H2O2) dissociation/adsorption energies, promoting chemodynamic therapy (CDT)-mediated hydroxyl radical (•OH) generation and oxygen (O2) production to alleviate hypoxia for enhanced SDT. More importantly, the periodic HEO-PMA heterostructures serve as charge mediators, enabling efficient separation of ultrasound (US)-induced electron-holes to augment singlet oxygen (1O2) yield for SDT. Additionally, the well-engineered energy band structure enables excited electrons to flow smoothly to HEO units, rapidly converting FeIII to FeII as regenerated Fenton-like nanocatalysts and boosting CDT in the TME. As a result, the SHPL exhibits more than 30-fold reactive oxygen species (ROS) production in simulated TME. The enhanced nanocatalytic reactions and SDT fully activate immune response, achieving the suppression of tumor metastases.
科研通智能强力驱动
Strongly Powered by AbleSci AI