Sustainable thermal buffering of microencapsulated bio-phase change materials through an engineered biochar dopant

Dimberu G. Atinafu, Ji Yong Choi, Jihee Nam, Beom Yeol Yun, Sumin Kim

Biochar ›› 2025, Vol. 7 ›› Issue (1) : 27.

Biochar ›› 2025, Vol. 7 ›› Issue (1) : 27. DOI: 10.1007/s42773-025-00425-7
Original Research

Sustainable thermal buffering of microencapsulated bio-phase change materials through an engineered biochar dopant

Author information +
History +

Abstract

Climate change and unbalanced energy demand and consumption require innovative approaches to the development of sustainable and renewable energy technologies. Phase change materials (PCMs) present exceptional solutions for zero-energy thermal management due to their outstanding energy storage density at an isothermal phase transition. However, the low thermal transport and thermal stability of bulk PCMs, as well as the expensive and complex synthesis of additive materials, hinder their large-scale utilization. In this study, food-waste-derived engineered biochar (FW) is produced via slow pyrolysis to improve the thermal properties of a microencapsulated bio-PCM (B28). The thermal performance of biochar-PCM composites is evaluated based on two biochar preparation systems: varying activation temperatures (carbonized at 400 °C followed by KOH activation at different temperatures (500–800 °C)) and varying mass ratios between KOH and biochar. The introduction of a low (0.63 wt%) engineered biochar dopant significantly improves the thermal diffusivity of B28 by more than 1.3-fold. The biochar-PCM microcapsule composites present fusion and crystalline isothermal phase transition temperatures of 29.4 ± 0.38 °C and 16.7 ± 0.13 °C, respectively. Moreover, the bio-PCM exhibits a highly efficient energy per unit mass of 61.6 kJ kg–1, which is 101.7% of the energy storage capacity of bulk B28. Additionally, the composite demonstrates high thermal stability with decomposition occurring above 195 °C, thus enabling an increase of > 20 °C in the onset decomposition point compared with pristine B28. Further analysis reveals the impact of the KOH/biochar mass ratio on the thermal properties of bio-PCM. Sample FW6PCM, in which the biochar is activated at 600 °C with a KOH/biochar mass ratio of 1, exhibits the highest enthalpy storage capacity. This study suggests a promising strategy for designing high-performance, eco-friendly, and scalable bio-based composite PCMs by overcoming the long-standing bottleneck of microcapsules, which is crucial for advanced thermal management applications such as cooling and green buildings.

Graphical Abstract

Cite this article

Download citation ▾
Dimberu G. Atinafu, Ji Yong Choi, Jihee Nam, Beom Yeol Yun, Sumin Kim. Sustainable thermal buffering of microencapsulated bio-phase change materials through an engineered biochar dopant. Biochar, 2025, 7(1): 27 https://doi.org/10.1007/s42773-025-00425-7

References

[]
Aftab W, Huang X, Wu W, Liang Z, Mahmood A, Zou R. Nanoconfined phase change materials for thermal energy applications. Energy Environ Sci, 2018, 11(6): 1392-1424.
CrossRef Google scholar
[]
Aftab W, Shi J, Jin Y, Usman A, Qin M, Ashraf Z . Phase engineered composite phase change materials for thermal energy manipulation. Small, 2024.
CrossRef Google scholar
[]
Arman Z, Bora P, Das D, Phukan MM. Green form-stable biocomposite of biochar from tea industry waste and organic phase change material. J Energy Storage, 2024, 101. 113815
CrossRef Google scholar
[]
Atinafu DG, Dong W, Wang C, Wang G. Synthesis of porous carbon from cotton using an Mg(OH)2 template for form-stabilized phase change materials with high encapsulation capacity, transition enthalpy and reliability. J Mater Chem A, 2018.
CrossRef Google scholar
[]
Atinafu DG, Yang S, Yun BY, Kang Y, Kim S. Use of biochar co-mediated chitosan mesopores to encapsulate alkane and improve thermal properties. Environ Res, 2022, 212. 113539
CrossRef Google scholar
[]
Atinafu DG, Yun BY, Wi S, Chang SJ, Kim S. Unveiling sustainable nano-enabled phase change materials for high thermal stability and energy storage capacity. J Energy Storage, 2023, 60. 106650
CrossRef Google scholar
[]
Atinafu DG, Kim YU, Kim S, Kang Y, Kim S. Advances in biocarbon and soft material assembly for enthalpy storage: fundamentals, mechanisms, and multimodal applications. Small, 2024, 20(13): 2305418.
CrossRef Google scholar
[]
Atinafu DG, Choi JY, Kang Y, Nam J, Kim S. Thermochemical transformation of biowaste for encapsulation technology and enabling a circular economy. Trends Food Sci Technol, 2024, 147. 104468
CrossRef Google scholar
[]
Chen X, Gao H, Tang Z, Dong W, Li A, Wang G. Optimization strategies of composite phase change materials for thermal energy storage, transfer, conversion and utilization. Energy Environ Sci, 2020, 13(12): 4498-4535.
CrossRef Google scholar
[]
Chen B, Zeng H, Yang F, Yang Y, Qiao Z, Zhao X . Functional biochar as sustainable precursors to boost the anaerobic digestion of waste activated sludge from a circular economy perspective: a review. Biochar, 2024, 6(1): 60.
CrossRef Google scholar
[]
Choi JY, Nam J, Yuk H, Yang S, Kim S. Enhancing the hygrothermal performance of corn cob residue-based eco-friendly building materials through biochar and microencapsulated phase change material incorporation. J Build Eng, 2024, 89. 109189
CrossRef Google scholar
[]
Ding Y, Bertram JR, Nagpal P. Utilizing atmospheric carbon dioxide and sunlight in graphene quantum dot-based nano-biohybrid organisms for making carbon-negative and carbon-neutral products. ACS Appl Mater Interfaces, 2023, 15(46): 53464-53475.
CrossRef Google scholar
[]
Ferrari AC, Basko DM. Raman spectroscopy as a versatile tool for studying the properties of graphene. Nat Nanotechnol, 2013, 8(4): 235-246.
CrossRef Google scholar
[]
Gayathri S, Jayabal P, Kottaisamy M, Ramakrishnan V. Synthesis of few layer graphene by direct exfoliation of graphite and a Raman spectroscopic study. AIP Adv, 2014, 4(2): 27116.
CrossRef Google scholar
[]
Gu X, Liu P, Liu C, Peng L, He H. A novel form-stable phase change material of palmitic acid-carbonized pepper straw for thermal energy storage. Mater Lett, 2019, 248 12-15.
CrossRef Google scholar
[]
Guo N, Yu L, Shi C, Yan H, Chen M. a facile and effective design for dynamic thermal management based on synchronous solar and thermal radiation regulation. Nano Lett, 2024, 24(4): 1447-1453.
CrossRef Google scholar
[]
IEA (2023) Renewables share of total energy supply in the Net Zero Scenario, 2010–2030. Paris. Retrieved from https://www.iea.org/data-and-statistics/charts/renewables-share-of-total-energy-supply-in-the-net-zero-scenario-2010-2030-2
[]
Jeon J, Park JH, Wi S, Yang S, Ok YS, Kim S. Characterization of biocomposite using coconut oil impregnated biochar as latent heat storage insulation. Chemosphere, 2019, 236. 124269
CrossRef Google scholar
[]
Ji H, Sellan DP, Pettes MT, Kong X, Ji J, Shi L, Ruoff RS. Enhanced thermal conductivity of phase change materials with ultrathin-graphite foams for thermal energy storage. Energy Environ Sci, 2014, 7(3): 1185-1192.
CrossRef Google scholar
[]
Ji R, Zhang Q, Zhou F, Xu F, Wang X, Huang C . Electrospinning fabricated novel poly (ethylene glycol)/graphene oxide composite phase-change nano-fibers with good shape stability for thermal regulation. J Energy Storage, 2021, 40. 102687
CrossRef Google scholar
[]
Jiang Y, Li B, Xu Z, Zhang T, Zhao Y. Emulsion-based monoliths with a solid-gel phase-transition and a solid–solid phase-transition for latent heat storage. J Polym Sci, 2024, 62(10): 2027-2035.
CrossRef Google scholar
[]
Jing Y, Zhao Z, Cao X, Sun Q, Yuan Y, Li T. Ultraflexible, cost-effective and scalable polymer-based phase change composites via chemical cross-linking for wearable thermal management. Nat Commun, 2023, 14(1): 8060.
CrossRef Google scholar
[]
Kottek M, Grieser J, Beck C, Rudolf B, Rubel F. World map of the Koppen-Geiger climate classification updated. Meteorol Z, 2006, 15(3): 259-263.
CrossRef Google scholar
[]
Kumar A, Bhattacharya T, Shaikh WA, Roy A, Chakraborty S, Vithanage M, Biswas JK. Multifaceted applications of biochar in environmental management: a bibliometric profile. Biochar, 2023, 5(1): 11.
CrossRef Google scholar
[]
Lei L, Pan F, Lindbråthen A, Zhang X, Hillestad M, Nie Y . Carbon hollow fiber membranes for a molecular sieve with precise-cutoff ultramicropores for superior hydrogen separation. Nat Commun, 2021, 12(1): 268.
CrossRef Google scholar
[]
Li X, Yu J, Jaroniec M, Chen X. Cocatalysts for selective photoreduction of CO2 into solar fuels. Chem Rev, 2019, 119(6): 3962-4179.
CrossRef Google scholar
[]
Lin Z, Ma L, Wang Q, Li L. Preparation and characterization of capric-myristic-stearic acid eutectic/mesoporous carbonized pomelo peel as a novel shape-stable composite phase change materials. Mater Res Express, 2019, 6(10. 105517
CrossRef Google scholar
[]
Lu C, Shi X, Liu Y, Xiao H, Li J, Chen X. Nanomaterials for adsorption and conversion of CO2 under gentle conditions. Mater Today, 2021, 50 385-399.
CrossRef Google scholar
[]
Lu C, Zhang X, Chen X. Advanced materials and technologies toward carbon neutrality. Acc Mater Res, 2022, 3(9): 913-921.
CrossRef Google scholar
[]
Luo Y, Zhang F, Li C, Cai J. Biomass-based shape-stable phase change materials supported by garlic peel-derived porous carbon for thermal energy storage. J Energy Storage, 2022, 46. 103929
CrossRef Google scholar
[]
Ma L, Guo C, Ou R, Sun L, Wang Q, Li L. Preparation and characterization of modified porous wood flour/lauric-myristic acid eutectic mixture as a form-stable phase change material. Energy Fuels, 2018, 32(4): 5453-5461.
CrossRef Google scholar
[]
Mac Dowell N, Fennell PS, Shah N, Maitland GC. The role of CO2 capture and utilization in mitigating climate change. Nat Clim Chang, 2017, 7(4): 243-249.
CrossRef Google scholar
[]
Mikhaylov AA, Sladkevich S, Medvedev AG, Prikhodchenko PV, Gun J, Sakharov KA . Enhanced thermal buffering of phase change materials by the intramicrocapsule sub per mille CNT dopant. ACS Appl Mater Interfaces, 2020, 12(14): 16227-16235.
CrossRef Google scholar
[]
Parvate S, Moshtaghibana S, Solanke M, Nizar N, Leister N, Schochat P . Lego-microfluidics generated magnetically responsive bifunctional microcapsules with encapsulated phase change material. ACS Sustain Chem Eng, 2024.
CrossRef Google scholar
[]
Qiu J, Huo D, Xue J, Zhu G, Liu H, Xia Y. Encapsulation of a phase-change material in nanocapsules with a well-defined hole in the wall for the controlled release of drugs. Angew Chem, 2019, 131(31): 10716-10721.
CrossRef Google scholar
[]
Qin Z, Li M, Flohn J, Hu Y. Thermal management materials for energy-efficient and sustainable future buildings. Chem Commun, 2021, 57(92): 12236-12253.
CrossRef Google scholar
[]
Ravindiran G, Rajamanickam S, Janardhan G, Hayder G, Alagumalai A, Mahian O . Production and modifications of biochar to engineered materials and its application for environmental sustainability: a review. Biochar, 2024, 6(1): 62.
CrossRef Google scholar
[]
Tag AT, Duman G, Ucar S, Yanik J. Effects of feedstock type and pyrolysis temperature on potential applications of biochar. J Anal Appl Pyrol, 2016, 120 200-206.
CrossRef Google scholar
[]
Tomczyk A, Sokołowska Z, Boguta P. Biochar physicochemical properties: pyrolysis temperature and feedstock kind effects. Rev Environ Sci Bio/technol, 2020, 19(1): 191-215.
CrossRef Google scholar
[]
Wang J, Yang M, Lu Y, Jin Z, Tan L, Gao H . Surface functionalization engineering driven crystallization behavior of polyethylene glycol confined in mesoporous silica for shape-stabilized phase change materials. Nano Energy, 2016, 19 78-87.
CrossRef Google scholar
[]
Wi S, Yang S, Yeol Yun B, Kim S. Exterior insulation finishing system using cementitious plaster/microencapsulated phase change material for improving the building thermal storage performance. Constr Build Mater, 2021, 299. 123932
CrossRef Google scholar
[]
Yameen MZ, Naqvi SR, Juchelková D, Khan MNA. Harnessing the power of functionalized biochar: progress, challenges, and future perspectives in energy, water treatment, and environmental sustainability. Biochar, 2024, 6(1): 25.
CrossRef Google scholar
[]
Yang S, Shi H-Y, Liu J, Lai Y-Y, Bayer Ö, Fan L-W. Supercooled erythritol for high-performance seasonal thermal energy storage. Nat Commun, 2024, 15(1): 4948.
CrossRef Google scholar
[]
Yavari F, Fard HR, Pashayi K, Rafiee MA, Zamiri A, Yu Z . Enhanced thermal conductivity in a nanostructured phase change composite due to low concentration graphene additives. J Phys Chem C, 2011, 115(17): 8753-8758.
CrossRef Google scholar
[]
Yuan X, Wang J, Deng S, Dissanayake PD, Wang S, You S . Sustainable food waste management: synthesizing engineered biochar for CO2 capture. ACS Sustain Chem Eng, 2022, 10(39): 13026-13036.
CrossRef Google scholar
[]
Yuan K, Chen Q, Qin M, Gao S, Wang Q, Gao S . Micro/nano encapsulated phase change materials: preparation, principle, and emerging advances in medical field. Adv Func Mater, 2024, 34(23): 2314487.
CrossRef Google scholar
[]
Yuan X, Suvarna M, Lim JY, Pérez-Ramírez J, Wang X, Ok YS. Active learning-based guided synthesis of engineered biochar for CO2 capture. Environ Sci Technol, 2024, 58(15): 6628-6636.
CrossRef Google scholar
[]
Yue X, Zhang R, Jin X, Zhang X, Bao G, Qin D. Bamboo-derived phase change material with hierarchical structure for thermal energy storage of building. J Energy Storage, 2023, 62. 106911
CrossRef Google scholar
[]
Zeng JL, Cao Z, Yang DW, Sun LX, Zhang L. Thermal conductivity enhancement of Ag nanowires on an organic phase change material. J Therm Anal Calorim, 2010, 101(1): 385-389.
CrossRef Google scholar
[]
Zhang Q, Lv Y, Wang Y, Yu S, Li C, Ma R, Chen Y. Temperature-dependent dual-mode thermal management device with net zero energy for year-round energy saving. Nat Commun, 2022, 13(1): 4874.
CrossRef Google scholar
[]
Zhang J, Zheng Z, Xu L, Xie H, Fei Z, Dyson PJ, Yan N. Light- and electro-driven phase change materials derived from activated porous biochar nanosheets and encapsulated polyethylene glycol. Colloids Surf, A, 2024, 690. 133783
CrossRef Google scholar
Funding
Korea Forestry Promotion Institute(RS-2024-00400730)

Accesses

Citations

Detail

Sections
Recommended

/