材料科学
电子设备和系统的热管理
热的
主动冷却
数码产品
消散
瞬态(计算机编程)
散热片
热质量
机械工程
逻辑门
离散化
计算机冷却
电子设备冷却
相变
计算机科学
下降(电信)
柔性电子器件
热能
电子线路
被动冷却
水冷
纳米技术
可靠性(半导体)
功勋
传热
冷却液
温度循环
能量(信号处理)
相变材料
能源管理
电子工程
和大门
机械
作者
Yabi Yang,Wanpeng Liu,Bao Yu Xia,Xiang Lu,瞿金平
摘要
Conventional thermal management strategies rely predominantly on passive heat dissipation or open-loop external control, struggling to address the transient and heterogeneous thermal loads of modern micro/nanodevices. Inspired by the sense-perceive-act closed-loop feedback of biological perspiration, we propose an autonomous thermal management strategy that encodes a first-order solid-liquid phase transition as a molecular logic gate. Within this phase-change-gated polymer network (Perspire X), the melting of polyethylene glycol (PEG) acts as a physical threshold. Surpassing this critical temperature triggers a macroscopic network arrangement, directly translating thermal sensing into an accelerated on-demand water release. We define a logic-gating figure of merit (LG-FOM) of 2.62 to quantify this behavior, demonstrating the discretized and switchable regulation of coupled mass and heat transport channels. Consequently, the material exhibits non-linear cooling amplification, achieving a 20.8-fold extension in effective cooling duration and a 13.5°C temperature drop compared with traditional phase-transition cooling materials. Furthermore, it demonstrates robust mechanical integrity alongside an exceptional thermal buffering capacity that effectively buffers the simulated pulsed thermal fluctuations under the tested conditions. Transcending traditional passive heat sinks, this phase-transition-gated transport mechanism outlines a scalable, materials-level thermodynamic programming strategy for next-generation electronics and intelligent energy systems.
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