Department of Mechanical Engineering, Birla Institute of Technology and Science, Hyderabad, 500078, India.
MEMS, Microfluidics and Nanoelectronics Laboratory, Department of Electrical and Electronics Engineering, Birla Institute of Technology and Science (BITS) Pilani, Hyderabad Campus, Hyderabad, 500078, India.
Sci Rep. 2021 May 7;11(1):9750. doi: 10.1038/s41598-021-88068-z.
Controlled, stable and uniform temperature environment with quick response are crucial needs for many lab-on-chip (LOC) applications requiring thermal management. Laser Induced Graphene (LIG) heater is one such mechanism capable of maintaining a wide range of steady state temperature. LIG heaters are thin, flexible, and inexpensive and can be fabricated easily in different geometric configurations. In this perspective, herein, the electro-thermal performance of the LIG heater has been examined for different laser power values and scanning speeds. The experimented laser ablated patterns exhibited varying electrical conductivity corresponding to different combinations of power and speed of the laser. The conductivity of the pattern can be tailored by tuning the parameters which exhibit, a wide range of temperatures making them suitable for diverse lab-on-chip applications. A maximum temperature of 589 °C was observed for a combination of 15% laser power and 5.5% scanning speed. A LOC platform was realized by integrating the developed LIG heaters with a droplet-based microfluidic device. The performance of this LOC platform was analyzed for effective use of LIG heaters to synthesize Gold nanoparticles (GNP). Finally, the functionality of the synthesized GNPs was validated by utilizing them as catalyst in enzymatic glucose biofuel cell and in electrochemical applications.
对于许多需要热管理的需要控制、稳定和均匀温度环境且具有快速响应的芯片实验室 (LOC) 应用,激光诱导石墨烯 (LIG) 加热器是一种能够维持宽稳态温度范围的机制。LIG 加热器很薄、很灵活、成本低廉,可以很容易地以不同的几何形状进行制造。在此视角下,本文研究了不同激光功率值和扫描速度对 LIG 加热器的电热性能。实验中激光烧蚀的图案表现出不同的电导率,对应于激光功率和速度的不同组合。可以通过调整参数来调整图案的电导率,这些参数可以表现出很宽的温度范围,使它们适用于各种 LOC 应用。在激光功率为 15%和扫描速度为 5.5%的组合下,观察到 589°C 的最高温度。通过将开发的 LIG 加热器与基于液滴的微流控器件集成,实现了 LOC 平台。分析了该 LOC 平台的性能,以有效利用 LIG 加热器合成金纳米颗粒 (GNP)。最后,利用它们作为酶葡萄糖生物燃料电池和电化学应用中的催化剂,验证了合成的 GNP 的功能。