论文标题
对微质量应用的微米和纳米磁炉的无梯度温度控制
Gradient-free temperature control over micrometric areas for thermoplasmonic applications in micro-and nano-devices
论文作者
论文摘要
对表面温度的控制在光电,光催化和生物传感应用中至关重要。在空间分辨率和热振幅方面,热质量方法表明了控制表面温度的性能无与伦比。大多数努力是在优化温度梯度和发展纳米级温度模式方面所做的。或者,无温度梯度的热质表面将实现进一步的功能。例如,可以使用几平方微米的恒定温度面积来调整2D晶体的间隙或在相变材料中控制过渡,而无需局部电阻加热器和外部电子设备。在这项工作中,我们提出了为此目的构想的热质平台。它由“绝缘子上的硅”底物上的一系列金纳米antennas组成,其中热量是由聚焦在阵列上的激光束产生的,在整个硅层上扩散,并由下面的绝缘子限制在垂直方向上。作为对以前方法的优势,热扩散允许在与激发点的所需距离处进行温度控制,从而显示了拟议的平台作为托管和控制温度的候选光敏感材料的候选者。
Control over surface temperature is of paramount importance in optoelectronics, photocatalysis and biosensing applications, among others. Thermoplasmonic approaches have demonstrated unrivalled performance for controlling surface temperature, in terms of spatial resolution and thermal amplitude. Most efforts have been done on optimizing the temperature gradient and developing nanoscale temperature patterns. Alternatively, a temperature gradient-free thermoplasmonic surface will enable further functionalities. For example, a constant temperature area of a few square microns can be employed to tune the gap of a 2D crystal or to control transition in a phase change material without the need of local resistive heaters and external electronics. In this work, we present a thermoplasmonic platform conceived for this purpose. It consists of an array of gold nanoantennas on a 'silicon on insulator' substrate, where the heat is generated by a laser beam focused on the array, diffused over the whole silicon layer and confined in the vertical direction by the insulator underneath. As an advantage to previous approaches, heat diffusion allows the temperature control at a desired distance from the excitation spot, thus showing the proposed platform as a candidate for hosting and controlling the temperature during the characterization of light-sensitive materials.