Grudinkin Sergey A, Bogdanov Kirill V, Tolmachev Vladimir A, Baranov Mikhail A, Kaliya Ilya E, Golubev Valery G, Baranov Alexander V
International Research and Education Centre for Physics of Nanostructures, ITMO University, 197101 St. Petersburg, Russia.
Ioffe Institute, 194021 St. Petersburg, Russia.
Nanomaterials (Basel). 2023 Dec 12;13(24):3124. doi: 10.3390/nano13243124.
We report the development of multifunctional core/shell chemical vapor deposition diamond nanoparticles for the local photoinduced hyperthermia, thermometry, and fluorescent imaging. The diamond core heavily doped with boron is heated due to absorbed laser radiation and in turn heats the shell of a thin transparent diamond layer with embedded negatively charged SiV color centers emitting intense and narrowband zero-phonon lines with a temperature-dependent wavelength near 738 nm. The heating of the core/shell diamond nanoparticle is indicated by the temperature-induced spectral shift in the intensive zero-phonon line of the SiV color centers embedded in the diamond shell. The temperature of the core/shell diamond particles can be precisely manipulated by the power of the incident light. At laser power safe for biological systems, the photoinduced temperature of the core/shell diamond nanoparticles is high enough to be used for hyperthermia therapy and local nanothermometry, while the high zero-phonon line intensity of the SiV color centers allows for the fluorescent imaging of treated areas.
我们报道了用于局部光致热疗、温度测量和荧光成像的多功能核壳化学气相沉积金刚石纳米颗粒的研制。重掺杂硼的金刚石核由于吸收激光辐射而被加热,进而加热具有嵌入带负电荷的SiV色心的薄透明金刚石层的壳层,这些色心发射出强烈且窄带的零声子线,其波长随温度变化,接近738nm。核壳金刚石纳米颗粒的加热通过嵌入金刚石壳层的SiV色心的强烈零声子线中温度诱导的光谱位移来指示。核壳金刚石颗粒的温度可以通过入射光的功率精确控制。在对生物系统安全的激光功率下,核壳金刚石纳米颗粒的光致温度足够高,可用于热疗和局部纳米温度测量,而SiV色心的高零声子线强度允许对治疗区域进行荧光成像。