School of Physics and Telecommunication Engineering, Zhoukou Normal University, Zhoukou 466001, China.
School of Physics and Telecommunication Engineering, Zhoukou Normal University, Zhoukou 466001, China.
Ultrason Sonochem. 2024 Nov;110:107036. doi: 10.1016/j.ultsonch.2024.107036. Epub 2024 Aug 19.
Sonodynamic therapy depending on ultrasound irradiation, which generates reactive species to kill cancer cells, has attracted considerable attention due to the deep tissue penetration depth. However, the insufficient separation of electron/hole pairs induces its limited therapeutic efficiency. Herein, we use oxygen vacancy and ZnO quantum dots decoration techniques to enhance electron/hole separation and reactive species production. In oxygen vacancy-engineered BaTiO, the higher oxygen vacancy concentration leads to more efficient adsorption of activate O and thus results in production of more radicals. In BaTiO/ZnO heterostructures, the built-in electric field further improves separation of electron/hole pairs. The separated electron/hole react with O/HO to produce reactive species of •OH/∙O and kill cancer cells upon ultrasound irradiation. The work provides a guidance for sonosensitizers to tumor therapy.
声动力学疗法依赖于超声辐射,它产生活性物质来杀死癌细胞,由于具有较深的组织穿透深度,因此引起了相当大的关注。然而,电子/空穴对的分离不足限制了其治疗效率。在此,我们使用氧空位和 ZnO 量子点修饰技术来提高电子/空穴的分离和活性物质的产生。在氧空位工程化的 BaTiO 中,较高的氧空位浓度导致更有效的激活 O 的吸附,从而产生更多的自由基。在 BaTiO/ZnO 异质结构中,内置电场进一步提高了电子/空穴对的分离。分离的电子/空穴与 O/HO 反应生成•OH/∙O 等活性物质,并在超声辐射下杀死癌细胞。这项工作为声敏剂在肿瘤治疗中的应用提供了指导。