Engineered biochar-graphene hybrid paper membranes for long-term thermal energy storage and ventilation energy recovery

Dimberu G. Atinafu , Harn Wei Kua , Yujin Kang , Sumin Kim

Biochar ›› 2026, Vol. 8 ›› Issue (1) : 132

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Biochar ›› 2026, Vol. 8 ›› Issue (1) :132 DOI: 10.1007/s42773-026-00646-4
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Engineered biochar-graphene hybrid paper membranes for long-term thermal energy storage and ventilation energy recovery
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Abstract

Sustainable development underpins strategies for mitigating environmental challenges through the design of resource-efficient materials and energy-conscious systems. Phase-change materials (PCMs) show substantial potential for addressing challenges in thermal energy storage and regulation. Yet, their performance is often limited by seepage, structural instability, and reduced energy-storage density when phase change occurs far from heat sources. Although PCMs supported by confining agents can suppress leakage and enhance thermal conductivity, fabricating composites from eco-friendly materials with multifunctional capabilities, including moisture management, remains critical for thermal buffering and human thermal comfort. Herein, an engineered biochar-based phase-change composite integrated with a paper membrane is developed to advance both latent heat storage and moisture management within a membrane system while simultaneously ensuring leakage resistance and enhanced heat transfer in pristine PCMs by creating an interconnected network and surface capillary forces. Biochar was produced from food waste subjected to slow carbonization at 400 °C and subsequent activation with KOH at varying temperatures (600–800 °C), further graphitization via ultrasonication, and vacuum assembly with docosane (C22) for heat storage and moisture management. The pore characteristics, chemical compatibility, microstructure, thermal performance, thermal stability, moisture permeability, and heat-transfer behavior were comprehensively characterized. The engineered biochar obtained at 700 °C (FK7G) exhibited a pronounced BET surface area (323.1 m2 g−1) with a high mesopore proportion (82.8%), resulting in up to 90.2% enthalpy retention after 1000 thermal cycles. In addition, the engineered composite system demonstrated up to 72.0% increase in latent heat compared with the pristine biochar composite. Benefiting from the graphitic nature of the engineered biohybrid, FK7G/C22 effectively bonded with a paper membrane for moisture management and met ISO 12572 and ASTM performance criteria, showing high water–vapor permeability with an equivalent air-layer thickness (Sd) of 0.71, below the critical threshold of 1.0. Furthermore, the composite demonstrated enhanced thermal conductivity (96.1% higher than the reference pristine membrane) and latent heat retention (80.2%) at 46.7 °C, effectively managing both heat and moisture variations. This graphitized engineered biohybrid provides sustainable and scalable insights into bio-based phase-change composites that enhance human thermal comfort through advanced thermal management, hygrothermal control, and a reduced carbon footprint.

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Keywords

Engineered biochar / Biochar-integrated membrane / Ventilation / Thermal energy storage / Durability

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Dimberu G. Atinafu, Harn Wei Kua, Yujin Kang, Sumin Kim. Engineered biochar-graphene hybrid paper membranes for long-term thermal energy storage and ventilation energy recovery. Biochar, 2026, 8 (1) : 132 DOI:10.1007/s42773-026-00646-4

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References

[1]

Abdul G, Zhu X, Chen B. Structural characteristics of biochar-graphene nanosheet composites and their adsorption performance for phthalic acid esters. Chem Eng J, 2017, 319: 9-20

[2]

Alkan C, Sarı A, Karaipekli A, Uzun O. Preparation, characterization, and thermal properties of microencapsulated phase change material for thermal energy storage. Sol Energy Mater Sol Cells, 2009, 93(1): 143-147

[3]

Al-Waked R, Nasif MS, Mostafa DB. Enhancing the performance of energy recovery ventilators. Energy Convers Manag, 2018, 171: 196-210

[4]

Asasian-Kolur N, Sharifian S, Haddadi B, Pourhoseinian M, Mousazadeh Shekarbaghani Z, Harasek M. Membrane-based enthalpy exchangers for coincident sensible and latent heat recovery. Energy Convers Manag, 2022, 253 115144

[5]

Atinafu DG, Yun BY, Choi JY, Yuan X, Ok YS, Kim S. Introduction of sustainable food waste-derived biochar for phase change material assembly to enhance energy storage capacity and enable circular economy. J Energy Storage, 2023, 72 108338

[6]

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

[7]

Atinafu DG, Choi JY, Yun BY, Kang Y, Kim S. Highly stable mesoporous-controlled corncob biochar confined paraffinic material with exceptional latent heat retention performance. J Energy Storage, 2024, 95 112540

[8]

Atinafu DG, Choi JY, Nam J, Yun BY, Kim S. Sustainable thermal buffering of microencapsulated bio-phase change materials through an engineered biochar dopant. Biochar, 2025, 71 27

[9]

Atinafu DG, Choi Y, Kim S. A high-performance paper membrane based on aerogel-engineered nanohybrid phase-change for thermal storage and moisture management. Energy Convers Manag, 2026, 348 120821

[10]

Bhardwaj S, Singh S, Choudhary N, Maji PK. One-pot fabrication of structurally stable cellulose nanofibers/biochar-based phase change composites with enhanced thermal energy conversion and storage capacity. ACS Appl Polym Mater, 2025, 77): 4619-4632

[11]

De Castro PF, Ahmed A, Shchukin DG. 2016. Confined‐volume effect on the thermal properties of encapsulated phase change materials for thermal energy storage. Chemistry–A European Journal. 22(13):4389–94

[12]

Chen Y, Lee H, Ozaki A, Choi Y, Arima Y. An integrated passive dehumidification system with energy recovery ventilation: a comprehensive simulation study. Appl Therm Eng, 2024, 243 122553

[13]

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

[14]

Choi Y, Choi JY, Kim YU, Kim S. Hybrid paper membranes incorporated with carbon and phase change materials for improved thermal performance. Appl Thermal Eng. 2025

[15]

Choi Y, Nam J, Suh WD, Kim S. Enhanced thermal performance of paper membrane systems in energy recovery ventilators through phase-change material integration. Appl Therm Eng, 2026, 284 129178

[16]

Felix De  Castro P, Shchukin DG. New polyurethane/docosane microcapsules as phase-change materials for thermal energy storage. Chem-Eur J, 2015, 21(31): 11174-11179

[17]

Fredi G, Dirè S, Callone E, Ceccato R, Mondadori F, Pegoretti A. Docosane-organosilica microcapsules for structural composites with thermal energy storage/release capability. Materials (Basel). 2019

[18]

Freeman TB, Foster KEO, Troxler CJ, Irvin CW, Aday A, Boetcher SKS, et al. . Advanced materials and additive manufacturing for phase change thermal energy storage and management: a review. Adv Energy Mater, 2023, 13(24 2204208

[19]

Fu B, Zou M, Luo W, Zhu G, Wang J, Qiang C, et al. . Experimental research and molecular dynamics simulation of composite phase change materials based on functionalized carbon nanotubes/epoxy resin/n-docosane. Sol Energy Mater Sol Cells, 2026, 296 114088

[20]

Gao Y, Li Y, Su Y, Wang Y, Li H, Wang X, et al. . Perdeuteration of (hetero)arenes in flow enabled by defective porous carbon. Adv Synth Catal, 2025, 36716 e70037

[21]

Geng X, Wang Z, Xiong F, Liu L, Zhen Z, Jin Y, et al. . Ultralow CNT-reinforced phase-change fibers for scalable wearable thermoregulation. Nat Commun, 2026, 171 2228

[22]

Guan X, Song B, Liu Y, Zhang H, Qi D, Gou Q, et al. . Photothermal conversion-driven thermal conductivity and energy storage synergistic enhancement in hierarchical porous N-doped biochar-based phase change materials. Energy, 2025, 338 138722

[23]

Handbook, A. (1996). HVAC systems and equipment (Vol. 39). chapter.

[24]

Hu H, Ke B, Li W, Wen H, Yang X, Lin Y, et al. . Biochar-graphene hybrid adsorbents for organic pollutant removal: mechanisms and perspectives. Mater Today Chem, 2026, 54 103631

[25]

IEA. (2025). Renewables 2025. Paris

[26]

Iso, E. N. (2016). Hygrothermal performance of building materials and products-Determination of water vapour transmission properties-Cup method. ISO Geneva, Switzerland

[27]

Kalderis D, Gholami P, Pashalidis I, Khataee A. Synergistic integration of biochar and graphene oxide in multi-functional composites: from sustainable synthesis to environmental remediation and energy storage. J Ind Eng Chem, 2025, 144: 210-227

[28]

Kim J, Hong M, Lee D, Choi Y, Lee J, Lee J, et al. . Mechanically robust phase-change multiscale-architected metastructures integrating asymmetric MXene/T-CNF aerogel for thermal energy storage and electromagnetic interference shielding. Adv Funct Mater, 2025, n/a e14180

[29]

Kostryukov SG, Matyakubov HB, Masterova YY, Kozlov AS, Pryanichnikova MK, Pynenkov AA, Khluchina NA. Determination of lignin, cellulose, and hemicellulose in plant materials by FTIR spectroscopy. J Anal Chem, 2023, 786): 718-727

[30]

Lee W, Park M, Su P-C, Kim J. Design of high-performance phase change composites using erythritol-modified epoxy/docosane and cellulose-grafted spherical aluminum nitride. Polym Test, 2025, 153 109049

[31]

Lee W, Park M, Lee J, Kim J. Palmitic-acid-grafted epoxy composite with boron-nitride-coated encapsulated docosane for efficient thermal management. ACS Appl Polym Mater, 2026, 8(3): 1964-1973

[32]

Li M, Wu Z. Thermal properties of the graphite/n-docosane composite PCM. J Therm Anal Calorim, 2013, 111(1): 77-83

[33]

Li J, Shao S, Wang Z, Xie G, Wang Q, Xu Z, et al. . A review of air-to-air membrane energy recovery technology for building ventilation. Energy Build, 2022, 265 112097

[34]

Li W, Xu Y, Wang G, Xu T, Wang K, Zhai S, Si C. Sustainable carbon-based catalyst materials derived from lignocellulosic biomass for energy storage and conversion: atomic modulation and properties improvement. Carbon Energy, 2025, 7(5 e708

[35]

Liang C, Li Z, Dai S. Mesoporous carbon materials: synthesis and modification. Angew Chem Int Ed Engl, 2008, 4720): 3696-3717

[36]

Liang Y, Xu X, Yuan F, Lin Y, Xu Y, Zhang Y, et al. . Graphene oxide additive-driven widening of microporous biochar for promoting water pollutant capturing. Carbon, 2023, 205: 40-53

[37]

Liu W-J, Jiang H, Yu H-Q. Development of biochar-based functional materials: toward a sustainable platform carbon material. Chem Rev, 2015, 115(22): 12251-12285

[38]

Liu J, Li Z-R, Feng B, Hu S-S, Wu Y-F, Lai Y-Y, et al. . Energy density recovery by enhanced hydrogen bonding for high-performance composite phase change materials. Adv Mater. 2025 n/a(n/a)

[39]

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

[40]

Mardiana-Idayu A, Riffat SB. Review on heat recovery technologies for building applications. Renew Sustain Energy Rev, 2012, 16(2): 1241-1255

[41]

Matuszek K, Kar M, Pringle JM, MacFarlane DR. Phase change materials for renewable energy storage at intermediate temperatures. Chem Rev, 2023, 123(1): 491-514

[42]

Olsson A-M, Salmén L. The association of water to cellulose and hemicellulose in paper examined by FTIR spectroscopy. Carbohydr Res, 2004, 339(4): 813-818

[43]

Qu M, Abdelaziz O, Gao Z, Yin H. Isothermal membrane-based air dehumidification: a comprehensive review. Renewable Sustain Energy Rev. 2018

[44]

Regkouzas P, Sygellou L, Diamadopoulos E. Production and characterization of graphene oxide-engineered biochars and application for organic micro-pollutant adsorption from aqueous solutions. Environ Sci Pollut Res, 2023, 30(37): 87810-87829

[45]

Shehabaz SM, Gugulothu SK, Muthyala R, Vishnu P, Buliraju P. Numerical investigation of a hybrid phase change material–heat pipe battery thermal management system for enhanced thermal regulation under high discharge conditions. Adv Eng Mater, 2025, 27(18 2501013

[46]

Shen Z, Qin M, Xiong F, Zou R, Zhang J. Nanocellulose-based composite phase change materials for thermal energy storage: status and challenges. Energy Environ Sci, 2023, 163): 830-861

[47]

Standard, A. (1989). Standard test methods for water vapor transmission of materials. Annual book of ASTM standards, Designation

[48]

Sun L, Wang Y, Chen L, Ying J, Li Q, Fu L, et al. . Van der Waals-bonded graphene clusters enhance thermal conductivity of phase-change materials for advanced thermal energy management. Mater Horiz, 2024, 11(20): 5031-5044

[49]

Tian Y, Yang R, Pan H, Zheng N, Huang X. Biomass-based shape-stabilized phase change materials for thermal energy storage and multiple energy conversion. Nano Energy, 2025, 133 110440

[50]

Tsani T, Pelser T, Ioannidis R, Maier R, Chen R, Risch S, et al. . Quantifying the trade-offs between renewable energy visibility and system costs. Nat Commun, 2025, 16(1 3853

[51]

Wang H, Wu Q, Okagaki J, Alizadeh A, Shamim JA, Hsu W-L, Daiguji H. Bouncing behavior of a water droplet on a super-hydrophobic surface near freezing temperatures. Int J Heat Mass Transf, 2021, 174 121304

[52]

Wang A, Ma Y, Zhao D. Pore engineering of porous materials: effects and applications. ACS Nano, 2024, 1834): 22829-22854

[53]

Wang S, Wu M, Han H, Du R, Zhao Z, Liu W, et al. . Regulating cold energy from the universe by bifunctional phase change materials for sustainable cooling. Adv Energy Mater, 2024, 14(45 2402667

[54]

Wang J, Fu B, Luo W, Ma Y, Jiang X, Li Q, et al. . Experimental study and molecular dynamics simulation of degradable epoxy resin/carboxylated carbon nanotubes/n-docosane composite phase change materials. Mater Today Phys, 2026, 64 102104

[55]

Wu Y, Chen M, Zhao G, Qi D, Zhang X, Li Y, et al. . Recyclable solid-solid phase change materials with superior latent heat via reversible anhydride-alcohol crosslinking for efficient thermal storage. Adv Mater. 2024

[56]

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, 61 25

[57]

Yan M, Liu C, Tang R, Zhu X, Li Z, Zhou J. Supramolecular phase change materials for spatiotemporally thermal energy utilization. Advanced Science. 2025

[58]

Yu S, Wang X, Wu D. Self-assembly synthesis of microencapsulated n-eicosane phase-change materials with crystalline-phase-controllable calcium carbonate shell. Energy Fuels, 2014, 285): 3519-3529

[59]

Yu Z, Wang W, Gao H, Liang D. Properties analysis and preparation of biochar-graphene composites under a one-step dip coating method in water treatment. Appl Sci. 2020

[60]

Yuan X, Wang J, Deng S, Dissanayake PD, Wang S, You S, et al. . Sustainable food waste management: synthesizing engineered biochar for CO2 capture. ACS Sustain Chem Eng, 2022, 10(39): 13026-13036

[61]

Zhang L-Z, Liang C-H, Pei L-X. Heat and moisture transfer in application scale parallel-plates enthalpy exchangers with novel membrane materials. J Membr Sci, 2008, 325(2): 672-682

[62]

Zhang M, Duan Y, Chen T, Qi J, Xu T, Du H, Si C. Lignocellulosic materials for energy storage devices. Ind Crops Prod, 2023, 203 117174

[63]

Zhang Y, Tang J, Chen J, Zhang Y, Chen X, Ding M, et al. . Accelerating the solar-thermal energy storage via inner-light supplying with optical waveguide. Nat Commun, 2023, 14(1 3456

[64]

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 Physicochem Eng Asp, 2024, 690 133783

[65]

Zhang T, Zhang X, Zhang S, Wang L, Yu D, Wang W. 3D printing-assisted honeycomb-structured bricklike aerogels applied for infrared stealth with good thermal management. ACS Appl Polym Mater, 2024, 622): 13828-13840

[66]

Zhao D, Zhao T. Pore engineering for high performance porous materials. ACS Cent Sci, 2023, 9(8): 1499-1503

[67]

Zhuang J, Li M, Pu Y, Ragauskas AJ, Yoo CG. Observation of potential contaminants in processed biomass using Fourier transform infrared spectroscopy. Appl Sci. 2020

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Yonsei University

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