纳米材料基催化剂
催化作用
儿茶酚
生物相容性
价(化学)
化学
动力学
组合化学
光化学
纳米技术
材料科学
有机化学
量子力学
物理
作者
Yuemei Wang,Shuwen Qiu,Liping Wang,Penghao Ji,Yuedong Guo,Heliang Yao,Chenyang Wei,Minfeng Huo,Jianlin Shi
标识
DOI:10.1002/anie.202316858
摘要
Abstract Nanocatalytic tumor therapy based on Fenton nanocatalysts has attracted considerable attention because of its therapeutic specificity, enhanced outcomes, and high biocompatibility. Nevertheless, the rate‐determining step in Fenton chemistry, which involves the transition of a high‐valence metallic center (Fe III ) to a Fenton‐active low‐valence metallic center (Fe II ), has hindered advances in nanocatalyst‐based therapeutics. In this study, we constructed mesoporous single iron atomic nanocatalysts (mSAFe NCs) by employing catechols from dopamine to coordinate and isolate single iron atoms. The catechols also serve as reductive ligands, generating a field‐effect‐based cocatalytic system that instantly reduces Fe III species to Fe II species within the mSAFe NCs. This self‐motivated cocatalytic strategy enabled by mSAFe NCs accelerates the kinetics of the Fenton catalytic reaction, resulting in remarkable performance for nanocatalytic tumor therapy both in vitro and in vivo .
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