纳米棒
材料科学
压电
纳米技术
活性氧
氧化应激
电流密度
内生
无定形固体
氧气
能量密度
生物物理学
光电子学
活性材料
再生(生物学)
癌症治疗
超声波传感器
细胞凋亡
压力(语言学)
纳米生物技术
纳米-
电流(流体)
作者
Jiarui Wang,He Gao,Jilin Zhong,Xujian Yang,Hongpeng You,Shuyan Song,Lile Dong
标识
DOI:10.1002/adhm.202503428
摘要
Abstract Insufficient charge separation and sluggish carrier transport hinder the development of piezocatalytic therapy. To overcome these limitations, polyvinyl pyrrolidone‐modified hollow amorphous ruthenium telluride (RTP) nanorods are ingeniously engineered, providing a stepwise countermeasure for the synergistic treatment of apoptosis and ferroptosis. Compared to traditional piezocatalytic sensitizers, RTP exhibits unique advantages: I) a high piezoelectric coefficient (d 33 : 23.1 pmV −1 ), II) overlapping energy bands (–0.20 eV), and III) significantly higher US current density (200.3 nA cm −2 ). Importantly, this elevated US current density not only accelerates the conversion of endogenous iron (Fe 3+ /Fe 2+ ), leading to iron overload, but also generates reactive oxygen species (ROS) storms, ultimately inducing oxidative stress and ferroptosis efficiently. This ingeniously designed nanoplatform, embodying “exogenous energy harvesting synergized with endogenous ion utilization,” serves as a promising candidate for efficient piezoelectric nanomedicine.
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