纳米片
材料科学
石墨烯
热导率
热的
氧化物
纳米技术
复合材料
热稳定性
电子设备和系统的热管理
热膨胀
极限抗拉强度
光电子学
工作(物理)
稳健性(进化)
领域(数学)
辅助
化学工程
作者
Xu Ran,Yaru Wang,Sijia Wu,Zewen Gan,Jiajie Cui,Junhao Shen,Liangjian Lyu,Chunhua Cai,Litao Sun,Xing Wu,Hengchang Bi
摘要
ABSTRACT Constructing macroscopic films from 2D nanosheets that retain their intrinsic properties is fundamentally limited by structural defects formed during solvent evaporation. Here, inspired by the ironing of fabrics, we develop a generic humidification‐ironing strategy to reconstruct wrinkled nanosheet assemblies into highly aligned and dense films. In this process, controlled hydration plasticizes the interlayer interfaces, while the applied thermal‐mechanical field promotes nanosheet sliding, wrinkle removal, and structural fixation. Using graphene oxide (GO) as a model system, the processed film exhibits a 2.4‐fold increase in orientation order and a nearly twofold increase in bulk density compared with the conventionally dried film. After chemical reduction, the resulting reduced GO (rGO) film achieves an in‐plane thermal conductivity of 814 W m −1 K −1 , corresponding to an 86% improvement over the untreated counterpart, together with a nearly doubled tensile strength. The same strategy is further extended to MoS 2 , MXene, and vermiculite (VMT) films, demonstrating its robustness across different wet‐assembled 2D materials. As a thermal spreader in a smartphone, the optimized rGO film reduces the peak chip temperature by 5.3°C and suppresses thermal throttling. This work establishes a scalable and material‐adaptable route for manufacturing high‐performance 2D nanosheet assemblies for thermal management and flexible electronics.
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