Department of Electrical Engineering, Boston University, Boston, MA, 02215, USA.
The Photonics Center, Boston University, Boston, MA, 02215, USA.
J Biol Phys. 2023 Sep;49(3):365-381. doi: 10.1007/s10867-023-09636-0. Epub 2023 Jul 21.
An analytical model is presented for light scattering associated with heat transport near a cell membrane that divides a complex system into two topologically distinct half-spaces. Our analysis is motivated by experiments on vibrational photothermal microscopy which have not only demonstrated remarkably high contrast and resolution, but also are capable of providing label-free local information of heat transport in complex morphologies. In the first Born approximation, the derived Green's function leads to the reconstruction of a full 3D image with photothermal contrast obtained using both amplitude and phase detection of periodic excitations. We show that important fundamental parameters including the Kapitza length and Kapitza resistance can be derived from experiments. Our goal is to spur additional experimental studies with high-frequency modulation and heterodyne detection in order to make contact with recent theoretical molecular dynamics calculations of thermal transport properties in membrane systems.
提出了一种分析模型,用于研究细胞膜附近热输运的光散射,该细胞膜将复杂系统分为拓扑上截然不同的两个半空间。我们的分析受到振动光热显微镜实验的启发,这些实验不仅显示出非常高的对比度和分辨率,而且还能够提供复杂形态中热输运的无标记局部信息。在第一 Born 近似下,推导出的格林函数导致使用周期性激发的幅度和相位检测来重建具有光热对比度的完整 3D 图像。我们表明,可以从实验中得出重要的基本参数,包括 Kapitza 长度和 Kapitza 电阻。我们的目标是通过高频调制和外差检测来激发更多的实验研究,以便与最近关于膜系统中热输运性质的理论分子动力学计算取得联系。