| Literature DB >> 34138331 |
Abstract
Rapid development of energy, electrical and electronic technologies has put forward higher requirements for the thermal conductivities of polymers and their composites. However, the thermal conductivity coefficient (λ) values of prepared thermally conductive polymer composites are still difficult to achieve expectations, which has become the bottleneck in the fields of thermally conductive polymer composites. Aimed at that, based on the accumulation of the previous research works by related researchers and our research group, this paper proposes three possible directions for breaking through the bottlenecks: (1) preparing and synthesizing intrinsically thermally conductive polymers, (2) reducing the interfacial thermal resistance in thermally conductive polymer composites, and (3) establishing suitable thermal conduction models and studying inner thermal conduction mechanism to guide experimental optimization. Also, the future development trends of the three above-mentioned directions are foreseen, hoping to provide certain basis and guidance for the preparation, researches and development of thermally conductive polymers and their composites.Entities:
Keywords: Interfacial thermal resistance; Intrinsic thermal conductivity; Thermal conduction mechanisms; Thermal conduction models; Thermally conductive polymer composites
Year: 2021 PMID: 34138331 PMCID: PMC8044277 DOI: 10.1007/s40820-021-00640-4
Source DB: PubMed Journal: Nanomicro Lett ISSN: 2150-5551
Fig. 1Schematic diagram of perspective intrinsically thermally conductive polymers with ordered structures at both microscopic and macroscopic levels
Fig. 2Schematic diagram of ITRF-F (a) and ITRF-M (b)
Fig. 3Schematic diagrams of proposed thermal conduction models and comparison with traditional models for thermally conductive CMG/PI (a–a′′) [24], Ag/rGO/PI (b–b′′) [25] and f-MWCNTg-rGO/PI (c–c′′) [26] composites
Fig. 4Thermal conduction pathways in different numbers (fewer-a & more-a′), different continuity (discontinuous-b & continuous-b′) and different length and shapes (short and straight-c & long and curved-c′)