Department of Physics, Northeastern University , Boston, Massachusetts 02115, United States.
State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University , Beijing 100871, People's Republic of China.
Nano Lett. 2017 Nov 8;17(11):7067-7074. doi: 10.1021/acs.nanolett.7b03752. Epub 2017 Oct 10.
When light is used to excite electronic transitions in a material, nonradiative energy during relaxation is often released in the form of heat. In this work, we show that photoexcitation of a silicon nitride nanopore using a focused visible laser results in efficient localized photothermal heating, which reduces the nearby electrolyte viscosity and increases the ionic conductance. In addition, a strong localized thermal gradient in the pore vicinity is produced, evidenced by finite-element simulations and experimental observation of both ion and DNA thermophoresis. After correcting for thermophoresis, the nanopore current can be used as a nanoscale thermometer, enabling rapid force thermoscopy. We utilize this to probe thermal melting transitions in synthetic and native biomolecules that are heated at the nanopore. Our results on single molecules are validated by correspondence to bulk measurements, which paves the way to various biophysical experiments that require rapid temperature and force control on individual molecules.
当光用于激发材料中的电子跃迁时,弛豫过程中通常以热的形式释放非辐射能量。在这项工作中,我们表明,使用聚焦可见光激光激发氮化硅纳米孔会导致有效的局部光热加热,从而降低附近电解液的粘度并增加离子电导率。此外,在纳米孔附近产生了强烈的局部热梯度,这一点可以通过有限元模拟和离子和 DNA 热泳的实验观察得到证明。在对热泳进行修正后,可以将纳米孔电流用作纳米级温度计,从而实现快速力热显微镜。我们利用这种方法来探测在纳米孔中加热的合成和天然生物分子的热熔融转变。我们对单个分子的结果通过与体相测量的对应关系得到了验证,这为需要对单个分子进行快速温度和力控制的各种生物物理实验铺平了道路。