Department of Materials Science and Engineering, University of Maryland College Park , College Park, Maryland 20742, United States.
ACS Nano. 2016 May 24;10(5):5272-9. doi: 10.1021/acsnano.6b01059. Epub 2016 May 10.
High temperature heaters are ubiquitously used in materials synthesis and device processing. In this work, we developed three-dimensional (3D) printed reduced graphene oxide (RGO)-based heaters to function as high-performance thermal supply with high temperature and ultrafast heating rate. Compared with other heating sources, such as furnace, laser, and infrared radiation, the 3D printed heaters demonstrated in this work have the following distinct advantages: (1) the RGO based heater can operate at high temperature up to 3000 K because of using the high temperature-sustainable carbon material; (2) the heater temperature can be ramped up and down with extremely fast rates, up to ∼20 000 K/second; (3) heaters with different shapes can be directly printed with small sizes and onto different substrates to enable heating anywhere. The 3D printable RGO heaters can be applied to a wide range of nanomanufacturing when precise temperature control in time, placement, and the ramping rate are important.
高温加热器在材料合成和器件加工中被广泛应用。在这项工作中,我们开发了基于三维(3D)打印的还原氧化石墨烯(RGO)加热器,用作具有高温和超快加热速率的高性能热供应源。与其他加热源,如熔炉、激光和红外辐射相比,本工作中开发的 3D 打印加热器具有以下明显的优势:(1)由于使用了高温可持续的碳材料,基于 RGO 的加热器可以在高达 3000 K 的温度下工作;(2)加热器的温度可以以非常快的速率上升和下降,高达约 20 000 K/s;(3)可以直接用小尺寸和不同的基底打印出不同形状的加热器,从而可以在任何地方加热。当时间、位置和升温速率的精确温度控制对纳米制造很重要时,3D 可打印的 RGO 加热器可以得到广泛应用。