Hyeong Jaeseok, Koo Jahyeon, Rim Minwoo, Wi Youngjae, Ko Hyeyoon, Yu Dongmin, Kim Sanghee, Kim Namil, Yoo Myong Jae, Jeong Kwang-Un
Department of Polymer-Nano Science and Technology, Department of Nano Convergence Engineering, Jeonbuk National University, Jeonju, 54896, Republic of Korea.
Department of Chemical Engineering, Hannam University, Daejeon, 34054, Republic of Korea.
Small. 2025 Jan;21(2):e2406066. doi: 10.1002/smll.202406066. Epub 2024 Sep 2.
Biomass-based functional polymers have received significant attention across various fields, in view of eco-friendly human society and sustainable growth. In this context, there are efforts to functionalize the biomass polymers for next-generation polymer materials. Here, stretchable heat transfer materials are focused on which are essential for stretchable electronics and future robotics. To achieve this goal, natural rubber (NR) is chemically modified with a thiol-terminated phenylnaphthalene (TTP), and then utilized as a thermally conductive NR (TCNR) matrix. Hexagonal boron nitride (h-BN), renowned for its high thermal conductivity and low electrical conductivity, is incorporated as a filler to develop stretchable heat transfer eco-materials. The optimized TCNR/h-BN composite elongates to 140% due to great elasticity of NR, and exhibits excellent dielectric properties (a low dielectric constant of 2.26 and a low dielectric loss of 0.006). Furthermore, synergetic phonon transfer of phenylnaphthalene crystallites and h-BN particles in the composite results in a high thermal conductivity of 0.87 W m K. The outstanding thermal, mechanical, and dielectric properties of the newly developed TCNR/h-BN composite enable the successful demonstration as stretchable and shape-adaptable thermal management materials.
鉴于生态友好型人类社会和可持续发展,基于生物质的功能聚合物在各个领域都受到了广泛关注。在此背景下,人们致力于将生物质聚合物功能化以用于下一代聚合物材料。在此,可拉伸传热材料成为研究重点,其对于可拉伸电子器件和未来机器人技术至关重要。为实现这一目标,天然橡胶(NR)用硫醇封端的苯基萘(TTP)进行化学改性,然后用作导热NR(TCNR)基体。以高导热率和低电导率著称的六方氮化硼(h-BN)作为填料加入,以开发可拉伸传热生态材料。由于NR具有出色的弹性,优化后的TCNR/h-BN复合材料可伸长至140%,并表现出优异的介电性能(低介电常数2.26和低介电损耗0.006)。此外,复合材料中苯基萘微晶和h-BN颗粒的协同声子传递导致其具有0.87 W m K的高导热率。新开发的TCNR/h-BN复合材料出色的热、机械和介电性能使其成功展示为可拉伸且形状适应性强的热管理材料。