TY - JOUR
T1 - Reduced graphene oxide-modified hydrated salt phase-change microcapsules with enhanced thermal conductivity and decreased supercooling
AU - Xu, Ke
AU - Peng, Yangrui
AU - Li, Ben
AU - Zhu, Chen
AU - Wu, Haozhe
AU - Shi, Yuxin
AU - Liu, Yujie
AU - Wang, Zhikai
AU - Ye, Xiaofeng
AU - Liang, Weijie
AU - Yang, Xule
AU - Zhang, Qiuyu
AU - Chen, Yanhui
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/11/30
Y1 - 2026/11/30
N2 - To enhance the thermal conductivity and decrease the supercooling of hydrated salt phase-change microcapsules, reduced graphene oxide (rGO) was introduced into the sodium acetate trihydrate (SAT) microcapsules, by means of the classic water-in-oil inverse interfacial polymerization. The SAT composite @ polyurethane (PU)/rGO phase-change microcapsules with 0.15 wt% rGO demonstrated the high thermal storage density (230.7 J/g) with the phase-change enthalpy efficiency being 99.9%, ultra-low supercooling degree (1.7 °C), high thermal conductivity (0.743 W/(m·K)), strong thermal stability and thermal cycling stability (after 200 thermal cycles, the residual enthalpy ratio remains higher than 95.8%), compared to other microcapsules. When the microcapsules were used in the simulated chip thermal management system, the microcapsules not only extended the time for the temperature rise from 25 °C to 70 °C by 520.1%, but also increased the time for the temperature dropping to 25 °C by 240.6%, compared to the control situation, which displayed their extraordinary thermal buffering ability, beneficial for maintaining the working ability of the chip. This work has successfully provided a new preparation strategy for SAT phase-change microcapsules with excellent comprehensive performance.
AB - To enhance the thermal conductivity and decrease the supercooling of hydrated salt phase-change microcapsules, reduced graphene oxide (rGO) was introduced into the sodium acetate trihydrate (SAT) microcapsules, by means of the classic water-in-oil inverse interfacial polymerization. The SAT composite @ polyurethane (PU)/rGO phase-change microcapsules with 0.15 wt% rGO demonstrated the high thermal storage density (230.7 J/g) with the phase-change enthalpy efficiency being 99.9%, ultra-low supercooling degree (1.7 °C), high thermal conductivity (0.743 W/(m·K)), strong thermal stability and thermal cycling stability (after 200 thermal cycles, the residual enthalpy ratio remains higher than 95.8%), compared to other microcapsules. When the microcapsules were used in the simulated chip thermal management system, the microcapsules not only extended the time for the temperature rise from 25 °C to 70 °C by 520.1%, but also increased the time for the temperature dropping to 25 °C by 240.6%, compared to the control situation, which displayed their extraordinary thermal buffering ability, beneficial for maintaining the working ability of the chip. This work has successfully provided a new preparation strategy for SAT phase-change microcapsules with excellent comprehensive performance.
KW - Hydrated salt
KW - Microcapsules
KW - Reduced graphene oxide
KW - Supercooling
KW - Thermal conductivity
KW - Thermal management
UR - https://www.scopus.com/pages/publications/105045920508
U2 - 10.1016/j.est.2026.123896
DO - 10.1016/j.est.2026.123896
M3 - 文章
AN - SCOPUS:105045920508
SN - 2352-152X
VL - 179
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 123896
ER -