Chung Seok-Hwan, Kim Jong Tae, Kim Dong Hwan
Materials Research Institute, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu, 42988, South Korea.
Sci Rep. 2020 Nov 2;10(1):18854. doi: 10.1038/s41598-020-75976-9.
Thermal interface materials (TIMs) are extensively used in electronic devices as efficient heat transfer materials. We fabricated all-carbon TIMs by hybridizing single-wall carbon nanotubes (SWCNTs) with graphite and demonstrated their performance by applying them to a thermoelectric generator (TEG) device. The hybrid carbon TIM exhibited maximum thermal conductivity when the SWCNT content was near 10 wt%. The TIM thermal contact resistance measured by a home-made calorimeter setup was 2.19 × 10mK/W, which did not vary with temperature but decreased with applied pressure. Post-treatment of the TIM with a silane coupling agent further reduced the TIM thermal contact resistance by 30%. When the TIM was placed between a TEG device and a copper heat reservoir, the TEG output power increased with the temperature difference across the TEG and applied pressure. Moreover, the post-treatment of the TIM enhanced the output power of the TEG device by up to 18.5%. This work provides a simple and effective pathway towards a carbon-based TIM that can be applied to a high temperature TEG.
热界面材料(TIMs)作为高效的热传递材料被广泛应用于电子设备中。我们通过将单壁碳纳米管(SWCNTs)与石墨混合制备了全碳TIMs,并将其应用于热电发电机(TEG)设备来展示其性能。当SWCNT含量接近10 wt%时,混合碳TIM表现出最大的热导率。通过自制量热仪装置测得的TIM热接触电阻为2.19 × 10mK/W,其不随温度变化,但随施加压力而降低。用硅烷偶联剂对TIM进行后处理可使TIM热接触电阻进一步降低30%。当TIM置于TEG设备和铜储热器之间时,TEG输出功率随TEG两端的温差和施加压力而增加。此外,TIM的后处理使TEG设备的输出功率提高了高达18.5%。这项工作为可应用于高温TEG的碳基TIM提供了一条简单有效的途径。