Unlocking High-Performance Sodium Acetate Trihydrate PCMs via Strontium Chloride Hexahydrate/rGO Synergy: From Mitigated Supercooling to Rapid Phase-Change Kinetics

Despite its high energy storage density and low cost, sodium acetate trihydrate (SAT) suffers from severe supercooling and poor thermal conductivity, limiting its practical use as a latent heat storage material. This study demonstrates that the supercooling of pristine SAT can be effectively suppressed from 34 °C down to 4.4 °C by employing a low weight fraction (0.50 wt.%) of SrCl2·6H2O (St) as a heterogeneous nucleating agent. While this binary SAT/0.5St blend experiences a minor ~5% enthalpy drop, the supplementary addition in reduced graphene oxide (rGO) nanoparticles completely recovers this loss. The resulting ternary composite, SAT/0.5St/0.125rGO, achieves an outstanding latent heat of 279.8 J/g, retaining 99.9% of pristine SAT’s capacity (280 J/g). Systematic thermal evaluation demonstrates that the co-addition of St and rGO effectively mitigates supercooling while successfully preserving the pristine latent heat capacity of the SAT matrix. Exhibiting an accelerated temperature response—characterized by a 6 min charging time and a rapid < 1 min discharging phase—this multi-component PCM presents a reliable candidate for advanced thermal engineering applications. Overall, these findings establish the baseline thermal performance for freshly prepared lab-scale samples (10 g for T-history and milligram-scale for DSC) within this specific SAT formulation, highlighting the need for future long-term thermal cycling stability and scale-up studies across broader salt hydrate systems.

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Publication Details

Journal
Crystals
Published
2026-09-22
DOI
https://doi.org/10.3390/cryst16100598
Primary Topic
Phase Change Materials Research
Type
article
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article

Unlocking High-Performance Sodium Acetate Trihydrate PCMs via Strontium Chloride Hexahydrate/rGO Synergy: From Mitigated Supercooling to Rapid Phase-Change Kinetics

Sinem Kılıçkap Işık
Crystals
Phase Change Materials Research
article

Unlocking High-Performance Sodium Acetate Trihydrate PCMs via Strontium Chloride Hexahydrate/rGO Synergy: From Mitigated Supercooling to Rapid Phase-Change Kinetics

Sinem Kılıçkap Işık
article en

Abstract

Despite its high energy storage density and low cost, sodium acetate trihydrate (SAT) suffers from severe supercooling and poor thermal conductivity, limiting its practical use as a latent heat storage material. This study demonstrates that the supercooling of pristine SAT can be effectively suppressed from 34 °C down to 4.4 °C by employing a low weight fraction (0.50 wt.%) of SrCl2·6H2O (St) as a heterogeneous nucleating agent. While this binary SAT/0.5St blend experiences a minor ~5% enthalpy drop, the supplementary addition in reduced graphene oxide (rGO) nanoparticles completely recovers this loss. The resulting ternary composite, SAT/0.5St/0.125rGO, achieves an outstanding latent heat of 279.8 J/g, retaining 99.9% of pristine SAT’s capacity (280 J/g). Systematic thermal evaluation demonstrates that the co-addition of St and rGO effectively mitigates supercooling while successfully preserving the pristine latent heat capacity of the SAT matrix. Exhibiting an accelerated temperature response—characterized by a 6 min charging time and a rapid < 1 min discharging phase—this multi-component PCM presents a reliable candidate for advanced thermal engineering applications. Overall, these findings establish the baseline thermal performance for freshly prepared lab-scale samples (10 g for T-history and milligram-scale for DSC) within this specific SAT formulation, highlighting the need for future long-term thermal cycling stability and scale-up studies across broader salt hydrate systems.

CrystalsVol. 16(10)
Bingöl University (TR)
Affordable and clean energy
Openalex Percentile: Top 20%
Phase Change Materials Research
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Unlocking High-Performance Sodium Acetate Trihydrate PCMs via Strontium Chloride Hexahydrate/rGO Synergy: From Mitigated Supercooling to Rapid Phase-Change Kinetics — Sinem Kılıçkap Işık · Crystals (2026) | TGRS Research Map | TGRS