REFERENCES

1. Tarragona J, Fernández C, de Gracia A. Model predictive control applied to a heating system with PV panels and thermal energy storage. Energy 2020;197:117229.

2. Zhao Y, Zhao CY, Markides CN, Wang H, Li W. Medium-and high-temperature latent and thermochemical heat storage using metals and metallic compounds as heat storage media: a technical review. Appl Energy 2020;280:115950.

3. Wu S, Li T, Tong Z, et al. High-performance thermally conductive phase change composites by large-size oriented graphite sheets for scalable thermal energy harvesting. Adv Mater 2019;31:1905099.

4. Jebasingh BE, Arasu VA. A comprehensive review on latent heat and thermal conductivity of nanoparticle dispersed phase change material for low-temperature applications. Energy Stor Mater 2020;24:52-74.

5. Mehrali M, Johan E, Shahi M, Mahmoudi A. Simultaneous solar-thermal energy harvesting and storage via shape stabilized salt hydrate phase change material. Chem Eng J 2021;405:126624.

6. Zheng Z, Liu H, Wu D, Wang X. Polyimide/MXene hybrid aerogel-based phase-change composites for solar-driven seawater desalination. Chem Eng J 2022;440:135862.

7. Tlili I, Alharbi T. Investigation into the effect of changing the size of the air quality and stream to the trombe wall for two different arrangements of rectangular blocks of phase change material in this wall. J Build Eng 2022;52:104328.

8. Yang H, Wang S, Wang X, et al. Wood-based composite phase change materials with self-cleaning superhydrophobic surface for thermal energy storage. Appl Energy 2020;261:114481.

9. Mikhaylov AA, Medvedev AG, Grishanov DA, et al. Doubly coated, organic-inorganic paraffin phase change materials: zinc oxide coating of hermetically encapsulated paraffins. Adv Mater Interfaces 2019;6:1900368.

10. Woods J, Mahvi A, Goyal A, Kozubal E, Odukomaiya A, Jackson R. Rate capability and ragone plots for phase change thermal energy storage. Nat Energy 2021;6:295-302.

11. Li C, Wang M, Xie B, Ma H, Chen J. Enhanced properties of diatomite-based composite phase change materials for thermal energy storage. Renew Energy 2020;147:265-74.

12. Wu H, Hu X, Li X, et al. Large-scale fabrication of flexible EPDM/MXene/PW phase change composites with excellent light-to-thermal conversion efficiency via water-assisted melt blending. Compos Part A Appl Sci Manuf 2022;152:106713.

13. Zhang L, Zhou K, Wei Q, et al. Thermal conductivity enhancement of phase change materials with 3D porous diamond foam for thermal energy storage. Appl Energy 2019;233:208-19.

14. Aslfattahi N, Saidur R, Arifutzzaman A, et al. Experimental investigation of energy storage properties and thermal conductivity of a novel organic phase change material/MXene as a new class of nanocomposites. J Energy Stor 2020;27:101115.

15. Lu Y, Xiao X, Fu J, et al. Novel smart textile with phase change materials encapsulated core-sheath structure fabricated by coaxial electrospinning. Chem Eng J 2019;355:532-9.

16. Ghahremannezhad A, Xu H, Salimpour MR, Wang P, Vafai K. Thermal performance analysis of phase change materials (PCMs) embedded in gradient porous metal foams. Appl Therm Eng 2020;179:115731.

17. Cao P, Liu H, Wu D, Wang X. Immobilization of laccase on phase-change microcapsules as self-thermoregulatory enzyme carrier for biocatalytic enhancement. Chem Eng J 2021;405:126695.

18. Liu C, Zhang J, Liu J, et al. Highly efficient thermal energy storage using a hybrid hypercrosslinked polymer. Angew Chem Int Ed 2021;133:14097-106.

19. Jiang Z, Yang W, He F, et al. Modified phase change microcapsules with calcium carbonate and graphene oxide shells for enhanced energy storage and leakage prevention. ACS Sustain Chem Eng 2018;6:5182-91.

20. Wang X, Chen Z, Xu W, Wang X. Capric acid phase change microcapsules modified with graphene oxide for energy storage. J Mater Sci 2019;54:14834-44.

21. Zhang W, Cheng H, Pan R, et al. Phase change microcapsules with a polystyrene/boron nitride nanosheet hybrid shell for enhanced thermal management of electronics. Langmuir 2022;38:16055-66.

22. Bao J, Zou D, Zhu S, Ma Q, Wang Y, Hu Y. A medium-temperature, metal-based, microencapsulated phase change material with a void for thermal expansion. Chem Eng J 2021;415:128965.

23. Zhang Y, Li X, Li J, Ma C, Guo L, Meng X. Solar-driven phase change microencapsulation with efficient Ti4O7 nanoconverter for latent heat storage. Nano Energy 2018;53:579-86.

24. Simón D, Rodríguez JF, Carmona M, Serrano A, Borreguero AM. Glycolysis of advanced polyurethanes composites containing thermoregulating microcapsules. Chem Eng J 2018;350:300-11.

25. Sipponen MH, Henn A, Penttilä P, Österberg M. Lignin-fatty acid hybrid nanocapsules for scalable thermal energy storage in phase-change materials. Chem Eng J 2020;393:124711.

26. Guo Y, Yang W, He F, et al. Electrostatic interaction-based self-assembly of paraffin@graphene microcapsules with remarkable thermal conductivity for thermal energy storage. Fuller Nanotub Carbon Nanostruct 2019;27:120-7.

27. Huang H, Shi T, He R, Wang J, Chu PK, Yu XF. Phase-changing microcapsules incorporated with black phosphorus for efficient solar energy storage. Adv Sci 2020;7:2000602.

28. Sun Z, Zhao L, Wan H, Liu H, Wu D, Wang X. Construction of polyaniline/carbon nanotubes-functionalized phase-change microcapsules for thermal management application of supercapacitors. Chem Eng J 2020;396:125317.

29. Panda PK, Dash P, Yang JM, Chang YH. Development of chitosan, graphene oxide, and cerium oxide composite blended films: structural, physical, and functional properties. Cellulose 2022;29:2399-411.

30. Lu N, Jing X, Zhang J, Zhang P, Qiao Q, Zhang Z. Photo-assisted self-assembly synthesis of all 2D-layered heterojunction photocatalysts with long-range spatial separation of charge-carriers toward photocatalytic redox reactions. Chem Eng J 2022;431:134001.

31. Chen K, Tang X, Jia B, et al. Graphene oxide bulk material reinforced by heterophase platelets with multiscale interface crosslinking. Nat Mater 2022;21:1121-9.

32. Korkmaz S, Kariper İA. Graphene and graphene oxide based aerogels: synthesis, characteristics and supercapacitor applications. J Energy Stor 2020;27:101038.

33. Xi F, Zhao J, Shen C, et al. Amphiphilic graphene quantum dots as a new class of surfactants. Carbon 2019;153:127-35.

34. Gu Q, Ng TCA, Zain I, et al. Chemical-grafting of graphene oxide quantum dots (GOQDs) onto ceramic microfiltration membranes for enhanced water permeability and anti-organic fouling potential. Appl Surf Sci 2020;502:144128.

35. Zhang L, Yang W, Jiang Z, et al. Graphene oxide-modified microencapsulated phase change materials with high encapsulation capacity and enhanced leakage-prevention performance. Appl Energy 2017;197:354-63.

36. Zhu Y, Qin Y, Liang S, et al. Graphene/SiO2/n-octadecane nanoencapsulated phase change material with flower like morphology, high thermal conductivity, and suppressed supercooling. Appl Energy 2019;250:98-108.

37. Yafei A, Yong J, Jing S, Deqing W. Microencapsulation of n-hexadecane as phase change material by suspension polymerization. e-Polymers 2007:7.

38. Arshad A, Ali HM, Yan WM, Hussein AK, Ahmadlouydarab M. An experimental study of enhanced heat sinks for thermal management using n-eicosane as phase change material. Appl Therm Eng 2018;132:52-66.

39. Li JF, Lu W, Zeng YB, Luo ZP. Simultaneous enhancement of latent heat and thermal conductivity of docosane-based phase change material in the presence of spongy graphene. Sol Energy Mater Sol Cells 2014;128:48-51.

40. Singh J, Parvate S, Dixit P, Chattopadhyay S. Facile synthesis of microencapsulated 1-dodecanol (PCM) for thermal energy storage and thermal buffering ability in embedded PVC film. Energy Fuel 2020;34:8919-30.

41. Sharma A, Sharma SD, Buddhi D. Accelerated thermal cycle test of acetamide, stearic acid and paraffin wax for solar thermal latent heat storage applications. Energy Convers Manag 2002;43:1923-30.

42. Sari A, Karaipekli A. Thermal reliability of palmitic acid/expanded graphite composite as form-stable PCM for thermal energy storage. Sol Energy Mater Sol Cells 2009;93:571-6.

43. Sarı A, Sarı H, Önal A. Thermal properties and thermal reliability of eutectic mixtures of some fatty acids as latent heat storage materials. Energy Convers Manag 2004;45:365-76.

44. Sarı A, Alkan C, Bicer A. Development, characterization, and latent heat thermal energy storage properties of neopentyl glycol-fatty acid esters as new solid-liquid PCMs. Ind Eng Chem Res 2013;52:18269-75.

45. Mo B, Mo S, Jia L, Wang Z, Chen Y. Microencapsulation of ethanol-soluble inorganic salts for high temperature thermal energy storage. Mater Chem Phys 2022;275:125261.

46. Wu X, Fan M, Cui S, Tan G, Shen X. Novel Na2SO4@SiO2 phase change material with core-shell structures for high temperature thermal storage. Sol Energy Mater Sol Cells 2018;178:280-8.

47. Liu Z, Chen Z, Yu F. Preparation and characterization of microencapsulated phase change materials containing inorganic hydrated salt with silica shell for thermal energy storage. Sol Energy Mater Sol Cells 2019;200:110004.

48. Ye R, Jiang H, Wang J, Yang X, Shu X. Fabrication and characteristics of eutectic hydrated salts/fumed silica composite as form-stable phase change materials for thermal energy storage. Sol Energy Mater Sol Cells 2022;238:111584.

49. Berdja M, Hu J, Hamid A, Sari O. Investigation on the anti-supercooling effect of sodium polyacrylate as an additive in phase change materials for the applications of latent heat thermal energy storage. J Energy Stor 2021;36:102397.

50. Hu W, Liu Z, Yuan M, Peng Y, Meng X, Hou C. Composite design and thermal comfort evaluation of safety helmet with phase change materials cooling. Therm Sci 2021;25:891-900.

51. Xin Y, Li J, Huang K, Liu L, Yang R. Thermal characteristics enhancement of Na2HPO4·12H2O/expanded graphite form-stable composite phase change material by the cationic surfactant modification. J Energy Stor 2022;54:105399.

52. Li C, Wang M, Chen Z, Chen J. Enhanced thermal conductivity and photo-to-thermal performance of diatomite-based composite phase change materials for thermal energy storage. J Energy Stor 2021;34:102171.

53. Li C, Li Q, Li Y, et al. Heat transfer of composite phase change material modules containing a eutectic carbonate salt for medium and high temperature thermal energy storage applications. Appl Energy 2019;238:1074-83.

54. Yuan S, Yan R, Ren B, et al. Robust, double-layered phase-changing microcapsules with superior solar-thermal conversion capability and extremely high energy storage density for efficient solar energy storage. Renew Energy 2021;180:725-33.

55. Do JY, Son N, Shin J, Chava RK, Joo SW, Kang M. N-Eicosane-Fe3O4@SiO2@Cu microcapsule phase change material and its improved thermal conductivity and heat transfer performance. Mater Des 2021;198:109357.

56. Li C, Yu H, Song Y, Liang H, Yan X. Preparation and characterization of PMMA/TiO2 hybrid shell microencapsulated PCMs for thermal energy storage. Energy 2019;167:1031-9.

57. Wei H, He F, Li Y, et al. Bifunctional paraffin@CaCO3: Ce3+ phase change microcapsules for thermal energy storage and photoluminescence. ACS Sustain Chem Eng 2019;7.23:18854-62.

58. Sun K, Liu H, Wang X, Wu D. Innovative design of superhydrophobic thermal energy-storage materials by microencapsulation of n-docosane with nanostructured ZnO/SiO2 shell. Appl Energy 2019;237:549-65.

59. Liu Z, Peng Y, Meng T, Yu L, Wang S, Hu X. Thermal-triggered fire-extinguishing separators by phase change materials for high-safety lithium-ion batteries. Energy Stor Mater 2022;47:445-52.

60. Sun Z, Sun K, Zhang H, Liu H, Wu D, Wang, X. Development of poly (ethylene glycol)/silica phase-change microcapsules with well-defined core-shell structure for reliable and durable heat energy storage. Sol Energy Mater Sol Cells 2021;225:111069.

61. Chen W, Liu X, Liu Y, Kim HI. Novel synthesis of self-assembled CNT microcapsules by O/W Pickering emulsions. Mater Lett 2010;64:2589-92.

62. Liu Z, Chen Z, Yu F. Enhanced thermal conductivity of microencapsulated phase change materials based on graphene oxide and carbon nanotube hybrid filler. Sol Energy Mater Sol Cells 2019;192:72-80.

63. Kumar K, Sharma K, Verma S, Upadhyay N. Experimental investigation of graphene-paraffin wax nanocomposites for thermal energy storage. Mater Today Proc 2019;18:5158-63.

64. Deng H, Yang W, Cai T, et al. Phase-change composites silicone rubber/paraffin@SiO2 microcapsules with different core/shell ratio for thermal management. Int J Energy Res 2021;45:18033-47.

65. Kim J, Cote LJ, Kim F, et al. Graphene oxide sheets at interfaces. J Am Chem Soc 2010;132:8180-6.

66. Potts JR, Lee SH, Alam TM, et al. Thermomechanical properties of chemically modified graphene/poly (methyl methacrylate) composites made by in situ polymerization. Carbon 2011;49:2615-23.

67. Lin Y, Zhu C, Fang G. Synthesis and properties of microencapsulated stearic acid/silica composites with graphene oxide for improving thermal conductivity as novel solar thermal storage materials. Sol Energy Mater Sol Cells 2019;189:197-205.

68. Fan C, Wei T, Hu C, Zhou, X. Preparation of GO/PUF hybrid shell microcapsules using GO sheets as the particulate emulsifier. Micro Nano Lett 2016;11:207-11.

69. Gudarzi MM, Sharif, F. Self assembly of graphene oxide at the liquid-liquid interface: a new route to the fabrication of graphene based composites. Soft matter 2011;7:3432-40.

70. Chen DZ, Qin SY, Tsui GC, et al. Fabrication, morphology and thermal properties of octadecylamine-grafted graphene oxide-modified phase-change microcapsules for thermal energy storage. Compos Part B Eng 2019;157:239-47.

71. Qiao Z, Mao J. Enhanced thermal properties with graphene oxide in the urea-formaldehyde microcapsules containing paraffin PCMs. J Microencapsul 2017;34:1-9.

72. Zhao Q, Yang W, Li, Y, et al. Multifunctional phase change microcapsules based on graphene oxide pickering emulsion for photothermal energy conversion and superhydrophobicity. Int J Energy Res 2020;44:4464-74.

73. Maithya OM, Li X, Feng X, Sui X, Wang B. Microencapsulated phase change material via pickering emulsion stabilized by graphene oxide for photothermal conversion. J Mater Sci 2020;55:7731-42.

74. Latibari S, Eversdijk J, Cuypers R, Drosou V, Shahi M. Preparation of phase change microcapsules with the enhanced photothermal performance. Polymers 2019;11:1507.

75. Meng X, Qin S, Fan H, et al. Long alkyl chain-grafted carbon nanotube-decorated binary-core phase-change microcapsules for heat energy storage: Synthesis and thermal properties. Sol Energy Mater Sol Cells 2020;212:110589.

76. Sreeprasad TS, Berry V. How do the electrical properties of graphene change with its functionalization? Small 2013;9:341-50.

77. Balandin AA, Ghosh S, Bao W, et al. Superior thermal conductivity of single-layer graphene. Nano Lett 2008;8:902-7.

78. Zheng K, Sun F, Tian X, et al. Tuning the interfacial thermal conductance between polystyrene and sapphire by controlling the interfacial adhesion. ACS Appl Mater Interfaces 2015;7:23644-9.

79. Huxtable ST, Cahill DG, Shenogin S, et al. Interfacial heat flow in carbon nanotube suspensions. Nat Mater 2003;2:731-4.

80. Chen Z, Wang J, Yu F, Zhang Z, Gao X. Preparation and properties of graphene oxide-modified poly (melamine-formaldehyde) microcapsules containing phase change material n-dodecanol for thermal energy storage. J Mater Chem A 2015;3:11624-30.

81. Yuan K, Wang H, Liu J, Fang X, Zhang Z. Novel slurry containing graphene oxide-grafted microencapsulated phase change material with enhanced thermo-physical properties and photo-thermal performance. Sol Energy Mater Sol Cells 2015;143:29-37.

82. Ji W, Cheng X, Chen S, Wang X, Li Y. Self-assembly fabrication of GO/TiO2@paraffin microcapsules for enhancement of thermal energy storage. Powder Technol 2021;385:546-56.

83. Wei H, Yang W, He F, et al. Core@double-shell structured multifunctional phase change microcapsules based on modified graphene oxide Pickering emulsion. Int J Energy Res 2021;45:3257-68.

84. Maithya OM, Zhu X, Li X, et al. High-energy storage graphene oxide modified phase change microcapsules from regenerated chitin Pickering Emulsion for photothermal conversion. Sol Energy Mater Sol Cells 2021;222:110924.

85. Liu Z, Chen Z, Yu F. Microencapsulated phase change material modified by graphene oxide with different degrees of oxidation for solar energy storage. Sol Energy Mater Sol Cells 2018;174:453-9.

86. Liang Y, Tao Z, Guo Q, Liu, Z. Sponge gourd-bioinspired phase change material with high thermal conductivity and excellent shape-stability. J Energy Stor 2021;39:102634.

87. Liu J, Chen Z, Liu Y, et al. Preparation of a PCM microcapsule with a graphene oxide platelet-patched shell and its thermal camouflage applications. Ind Eng Chem Res 2019;58:19090-9.

88. Ruan K, Shi X, Guo Y, Gu, J. Interfacial thermal resistance in thermally conductive polymer composites: a review. Compos Commun 2020;22:100518.

89. Zhang Y, Wang K, Tao W, Li D. Preparation of microencapsulated phase change materials used graphene oxide to improve thermal stability and its incorporation in gypsum materials. Constr Build Mater 2019;224:48-56.

90. Li S, Ji W, Zou L, Li L, Li Y, Cheng X. Crystalline TiO2 shell microcapsules modified by Co3O4/GO nanocomposites for thermal energy storage and photocatalysis. Mater Today Sustain 2022;19:100197.

91. Ding Z, Yang W, He F, et al. GO modified EPDM/paraffin shape-stabilized phase change materials with high elasticity and low leakage rate. Polymer 2020;204:122824.

92. Feng J, Liu ZJ, Zhang DQ, He Z, Tao ZC, Guo QG. Phase change materials coated with modified graphene-oxide as fillers for silicone rubber used in thermal interface applications. New Carbon Mate 2019;34:188-95.

93. Yuan K, Liu J, Fang X, Zhang Z. Novel facile self-assembly approach to construct graphene oxide-decorated phase-change microcapsules with enhanced photo-to-thermal conversion performance. J Mater Chem A 2018;6:4535-43.

94. Zhou J, Zhao J, Li H, Cui Y, Li X. Enhanced thermal properties for nanoencapsulated phase change materials with functionalized graphene oxide (FGO) modified PMMA. Nanotechnology 2020;31:295704.

95. Zhang L, Zhang Y, Xu H, et al. Polymer/graphene oxide composite microcapsules with greatly improved barrier properties. RSC Adv 2016;6:7618-25.

96. Ma X, Liu Y, Liu H, et al. Fabrication of novel slurry containing graphene oxide-modified microencapsulated phase change material for direct absorption solar collector. Sol Energy Mater Sol Cells 2018;188:73-80.

97. Shang Y, Zhang D. Preparation and thermal properties of graphene oxide-microencapsulated phase change materials. Nanoscale Microscale Thermophys Eng 2016;20:147-57.

98. Zheng Z, Jin J, Xu GK, et al. Highly stable and conductive microcapsules for enhancement of joule heating performance. ACS Nano 2016;10:4695-703.

99. Guo H, Jiao W, Jin H, et al. Microsphere structure composite phase change material with anti-leakage, self-sensing, and photothermal conversion properties for thermal energy harvesting and multi-functional sensor. Adv Funct Mater 2023;33:2209345.

100. Yang W, Zhang L, Guo Y, et al. Novel segregated-structure phase change materials composed of paraffin@graphene microencapsules with high latent heat and thermal conductivity. J Mater Sci 2018;53:2566-75.

101. Zhao Q, Yang W, Zhang H, et al. Graphene oxide pickering phase change material emulsions with high thermal conductivity and photo-thermal performance for thermal energy management. Colloid Surfaces A 2019;575:42-9.

102. Chen C, Xi J, Han Y, et al. Ultralight graphene micro-popcorns for multifunctional composite applications. Carbon 2018;139:545-55.

103. Ji W, Cheng X, Chen H, Li L, Li Y, Liu, Z. Efficient synthesis of regular spherical GO/SiO2@Solar Salt microcapsules to enhance heat-storage capacity and cycle stability. Energy Convers Manag 2021;245:114637.

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