Schönle A, Hell S W
Opt Lett. 1998 Mar 1;23(5):325-7. doi: 10.1364/ol.23.000325.
We derive an integral solution for the local heating of a linearly absorbing, uniform medium exposed to strongly focused light. Numerical results for local heating under typical multiphoton microscopy and optical trapping conditions are presented for various aperture angles. In contrast with common Gaussian beam approximations, our model employs the focal-intensity distribution as described by the point spread function of the lens. In this way, the model also accounts for axial heat transportation, which results in a lower prediction for the temperature increase. For an aperture of 1.2 (water immersion), irradiation with 100 mW of 850-nm light for 1 s increases the local temperature of water by 0.2 K. Heating of water by linear absorption can be ruled out as a limiting factor in standard multiphoton-excitation microscopy.
我们推导了一个关于线性吸收、均匀介质在强聚焦光照射下局部加热的积分解。给出了在典型的多光子显微镜和光镊条件下,不同孔径角的局部加热数值结果。与常见的高斯光束近似不同,我们的模型采用了由透镜点扩散函数描述的焦强度分布。通过这种方式,该模型还考虑了轴向热传输,这导致对温度升高的预测值较低。对于1.2的孔径(水浸),用100 mW的850 nm光照射1 s会使水的局部温度升高0.2 K。在标准多光子激发显微镜中,线性吸收导致的水加热可被排除为一个限制因素。