纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 239-246.doi: 10.13475/j.fzxb.20250802102

• 综合述评 • 上一篇    下一篇

静电纺丝制备辐射制冷纳米纤维材料的研究进展

包安娜1, 洪剑寒1,2,3,4()   

  1. 1 绍兴大学 纺织科学与工程学院, 浙江 绍兴 312000
    2 浙江省清洁染整技术研究重点实验室, 浙江 绍兴 312000
    3 绍兴大学 纤维基复合材料国家工程研究中心绍兴分中心, 浙江 绍兴 312000
    4 绍兴大学 国家碳纤维工程技术研究中心浙江分中心, 浙江 绍兴 312000
  • 收稿日期:2025-08-08 修回日期:2025-12-24 出版日期:2026-07-15 发布日期:2026-07-29
  • 通讯作者: 洪剑寒(1982—),男,教授,博士。主要研究方向为新型纺织材料的制备与应用。E-mail: jhhong@usx.edu.cn
  • 作者简介:包安娜(2001—),女,硕士生。主要研究方向为静电纺丝技术与纳米纤维制品开发与研究。
  • 基金资助:
    浙江省自然科学基金探索公益项目(LTGY24E030001);国家级大学生创新创业项目(202510349016);绍兴文理学院校级科研项目(Y20240258)

Research progress in preparation of radiation refrigeration nanofiber materials by electrospinning

BAO Anna1, HONG Jianhan1,2,3,4()   

  1. 1 School of Textile Science and Engineering, Shaoxing University, Shaoxing, Zhejiang 312000, China
    2 Key Laboratory of Clean Dyeing and Finishing Technology of Zhejiang Province, Shaoxing, Zhejiang 312000, China
    3 Shaoxing Sub-center of National Engineering Research Center for Fiber-based Composites, Shaoxing University, Shaoxing, Zhejiang 312000, China
    4 Zhejiang Sub-center of National Carbon Fiber Engineering Technology Research Center, Shaoxing University, Shaoxing, Zhejiang 312000, China
  • Received:2025-08-08 Revised:2025-12-24 Published:2026-07-15 Online:2026-07-29

摘要:

针对全球气温的持续升高以及能源消耗随之增长所引发的能源问题,辐射制冷作为一种零能耗、通过红外辐射来实现制冷的技术成为研究热点。首先系统阐述了辐射制冷的基本原理,从纤维层面深入探讨了辐射制冷纺织品的实现路径;然后,概述了辐射制冷纤维的制备原料、研究现状。最后,总结了辐射制冷纺织品在个人热管理等领域的应用,并总结了该领域现存问题及展望了未来发展方向。研究认为:纯聚合物基薄膜虽具有一定的辐射制冷性能,但其太阳光反射性能相对较弱;聚合物复合无机材料薄膜能够在一定程度上增强太阳光反射性能,但往往伴随着力学性能下降;同轴静电纺丝薄膜在一定程度上兼顾了纯聚合物基和聚合物复合无机材料薄膜的优势,但仍面临芯鞘结构稳定性控制及成本等问题。

关键词: 辐射制冷, 静电纺丝, 纳米纤维膜, 个人热管理, 光谱调控

Abstract:

Significance With the aggravation of global warming and the depletion of fossil energy, efficient regulation of environment temperature with low energy consumption has become an important issue to be solved urgently. As a passive cooling method without external energy consumption, radiation refrigeration technology has attracted extensive attention, and has made remarkable research progress in many fields such as building cooling, photovoltaic device cooling and personal thermal management, thus becomes a hot research topic. Based on fiber materials, the designs of structure and components with radiation refrigeration function are reviewed, which not only effectively improve the cooling effect, but also provide a more feasible path for the practical application of radiation refrigeration technology in the field of personal thermal management(PTM).

Progress In recent years, substantial progress has been made in the research of radiation refrigeration nanofiber membranes. Radiation refrigeration fiber materials mainly include infrared radiation polymers (such as PVDF, PMMA, cellulose, etc.) and infrared radiation polymers combined with inorganic materials (such as TiO2, SiO2, Al2O3, etc.). The size distribution of electrospun nanofibers is consistent with the solar wavelength, which induces Mie scattering effect and enhances the solar reflectivity of the film. However, the polymer has a specific chemical structure, and the mid-infrared (MIR) emissivity of the film at the wavelength of 8-13 μm is achieved by molecular bond vibration and stretching. Among polymer-based membranes, polyethylene oxide (PEO) nanofiber membranes are composed of random nanofibers with disordered molecular chains. Compared with non-selective emitters, the cooled temperature at night is increased at about 3 ℃, and it is cooled at 5 ℃ under the sun irradiation. If inorganic materials are compounded with the polymers, the radiation refrigeration effect is further improved, but the wearing comfort of textiles may be greatly reduced. The average reflectivity of PMMA/SiO2 porous fibers and composite porous films in the solar spectrum band is 97%, the emissivity in the atmospheric window band is over 90%, and the temperature can be reduced by over 5 ℃ during the day. Coaxial electrospinning can effectively overcome the limitations of poor mechanical properties of traditional electrospun fibers by endowing the fiber with a core-sheath structure. Poly(3-hydroxybutyrate-co-3- hydroxyvalerate) (PHBV) and tetraethyl orthosilicate (TEOS) are used as composite shells, and octadecane is encapsulated as the core phase change material. The solar reflectivity is 95.0%, and the emissivity is 88.6% under their radiation of 550.2 W/m2.

Conclusion and Prospect Radiation refrigeration technology is used to prepare fiber membrane through electrospinning, the products from which, demonstrating good cooling effect, have been applied in personal thermal management. Although the electrospun nanofiber membrane based on radiation refrigeration has made remarkable progress in experimental research, its transformation from laboratory results to large-scale industrialization still faces many technical bottlenecks and practical challenges. At present, there are still some problems in the preparation of related materials, such as difficulty in industrial production, low production efficiency, high preparation cost and unsatisfactory durability of materials. In addition, the research is still limited on dynamically adjusted textiles, color radiant refrigeration textiles and multifunctional integrated radiant refrigeration textiles to meet the needs of different groups of people. In the future, the research needs to be further deepened from the aspects of material molecular structure design, spinning process optimization and composite interface regulation, and develop radiation refrigeration fiber products with high performance and wearability to promote its large-scale application in the field of personal thermal management. At the same time, the use of such materials is expected to extend to multiple scenarios such as building energy saving, special clothing, glacier protection, aerospace, automobile interior, cold chain logistics and agricultural greenhouse, leading to acceleration of the all-round popularization and industrialization of radiation refrigeration technology in the living environment.

Key words: radiation refrigeration, electrospinning, nanofiber membrane, personal thermal management, spectral regulation

中图分类号: 

  • TS102.6

图1

AM 1.5G太阳辐照度光谱"

[1] HANSEN J, RUEDY R, SATO M, et al. Global surface temperature change[J]. Reviews of Geophysics, 2010, 48(4): RG4004.
[2] HSU P C, LIU X G, LIU C, et al. Personal thermal management by metallic nanowire-coated textile[J]. Nano Letters, 2015, 15(1): 365-371.
doi: 10.1021/nl5036572
[3] 刘扬, 潘登, 陈文, 等. 纳米光学辐射传热: 从热辐射增强理论到辐射制冷应用[J]. 物理学报, 2020, 69(3): 230-247.
LIU Yang, PAN Deng, CHEN Wen, et al. Radiative heat transfer in nanophotonics: from thermal radiation enhancement theory to radiative cooling applications[J]. Acta Physica Sinica, 2020, 69(3): 230-247.
[4] 刘熙远, 傅强, 邓华. 多功能聚合物基辐射制冷材料的发展近况及应用[J]. 高分子通报, 2025, 38(4): 572-589.
LIU Xiyuan, FU Qiang, DENG Hua. Recent development and application of multi-functional polymer-based passive daytime radiation cooling materials[J]. Polymer Bulletin, 2025, 38(4): 572-589.
[5] YANG H, ZHANG Y Q, XIE W J, et al. Tourmaline-enhanced P(VdF-HFP) composite textile coatings for high-performance passive daytime radiative cooling[J]. Progress in Organic Coatings, 2025, 200: 109091.
doi: 10.1016/j.porgcoat.2025.109091
[6] WEI J, CHEN H, LIU J C, et al. Radiative cooling technologies toward enhanced energy efficiency of solar cells: materials, systems, and perspectives[J]. Nano Energy, 2025, 136: 110680.
doi: 10.1016/j.nanoen.2025.110680
[7] XU J C, QIU J. Effect of global climate change on the sub-ambient radiative cooling performance of ideal coolers in different environments[J]. International Communications in Heat and Mass Transfer, 2025, 163: 108705.
doi: 10.1016/j.icheatmasstransfer.2025.108705
[8] ZHOU J L, ZENG Q, LIU Y J, et al. Bio-inspired dual-mode Janus film with optical adaptation for spatial thermal management and year-round energy saving[J]. Nano Energy, 2025, 134: 110580.
doi: 10.1016/j.nanoen.2024.110580
[9] YE Q, CHEN X Y, YAN H J, et al. Thermal conductive radiative cooling film for local heat dissipation[J]. Materials Today Physics, 2025, 50: 101626.
doi: 10.1016/j.mtphys.2024.101626
[10] DU L L, LI R H, TAN M W, et al. A promising radiative cooling composite coatings based on hydromagnesite mineral for dual thermal management in human body and lithium-ion battery[J]. Chemical Engineering Journal, 2025, 510: 161730.
doi: 10.1016/j.cej.2025.161730
[11] 谭文萍, 张硕, 张倩, 等. 聚乳酸纤维气凝胶制备及其辐射制冷性能[J]. 纺织学报, 2025, 46(6): 63-72.
TAN Wenping, ZHANG Shuo, ZHANG Qian, et al. Preparation and radiation refrigeration properties of polylactic acid fiber aerogel[J]. Journal of Textile Research, 2025, 46(6): 63-72.
[12] LIU Y M, BU X H, FENG M X, et al. Spectrally selective and thermally insulating hybrid nanofiber aerogel coolers for building energy conservation[J]. Journal of Colloid and Interface Science, 2025, 680: 345-354.
doi: 10.1016/j.jcis.2024.11.002
[13] FAN S H, LI W. Photonics and thermodynamics concepts in radiative cooling[J]. Nature Photonics, 2022, 16(3): 182-190.
doi: 10.1038/s41566-021-00921-9
[14] ABEBE M G, KHOUSAKOUN E, GIDIK H, et al. A textured surface platform for dual-mode temperature regulation in photonic textiles[J]. ACS Applied Optical Materials, 2024, 2(6): 963-972.
doi: 10.1021/acsaom.3c00178
[15] CHEN C, JIA X Y, LI X R, et al. Scalable wet-spinning of wearable chitosan-silica textile for all-day radiative cooling[J]. Chemical Engineering Journal, 2023, 475: 146307.
doi: 10.1016/j.cej.2023.146307
[16] VALL S, CASTELL A. Radiative cooling as low-grade energy source: a literature review[J]. Renewable and Sustainable Energy Reviews, 2017, 77: 803-820.
doi: 10.1016/j.rser.2017.04.010
[17] RAMAN A P, ABOU ANOMA M, ZHU L X, et al. Passive radiative cooling below ambient air temperature under direct sunlight[J]. Nature, 2014, 515(7528): 540-544.
doi: 10.1038/nature13883
[18] HOSSAIN M M, GU M. Radiative cooling: principles, progress, and potentials[J]. Advanced Science, 2016, 3(7): 1500360.
doi: 10.1002/advs.v3.7
[19] 岑婵. 户外环境下衣下空气层传热过程研究[D]. 上海: 东华大学, 2022:2-3.
CEN Chan. Research on heat transfer process of air layer under clothing in outdoor environment[D]. Shanghai: Donghua University, 2022:2-3.
[20] YU X X, CHEN C. A simulation study for comparing the cooling performance of different daytime radiative cooling materials[J]. Solar Energy Materials and Solar Cells, 2020, 209: 110459.
doi: 10.1016/j.solmat.2020.110459
[21] YANG Q H. Cooling the Earth: a polymer-based selective thermal emitter for all-day radiative cooling[J]. Science China Chemistry, 2021, 64(3): 339-340.
doi: 10.1007/s11426-020-9914-y
[22] AILI A, WEI Z Y, CHEN Y Z, et al. Selection of polymers with functional groups for daytime radiative cooling[J]. Materials Today Physics, 2019, 10: 100127.
doi: 10.1016/j.mtphys.2019.100127
[23] YU X X, CHAN J Q, CHEN C. Review of radiative cooling materials: performance evaluation and design approaches[J]. Nano Energy, 2021, 88: 106259.
doi: 10.1016/j.nanoen.2021.106259
[24] WANG T, WU Y, SHI L, et al. A structural polymer for highly efficient all-day passive radiative cooling[J]. Nature Communications, 2021, 12: 365.
doi: 10.1038/s41467-020-20646-7 pmid: 33446648
[25] WOO H Y, CHOI Y, CHUNG H, et al. Colloidal inorganic nano- and microparticles for passive daytime radiative cooling[J]. Nano Convergence, 2023, 10(1): 17.
doi: 10.1186/s40580-023-00365-7 pmid: 37071232
[26] YANG H Y, CHEN R, YU G W, et al. Decorating natural silk nanofiber aerogel with a hierarchical structure via TiO2 for improved UV protection and radiation cooling[J]. Langmuir, 2025, 41(13): 9112-9121.
doi: 10.1021/acs.langmuir.5c00717
[27] ZHANG L X, ZHU Q T, ZHOU Y T, et al. Dual-window emissive radiative cooling textiles with a PTFE/SiO2 bilayer coating for enhanced thermal management[J]. Chemical Engineering Journal, 2025, 513: 162980.
doi: 10.1016/j.cej.2025.162980
[28] GUO W Y, SONG L X, WANG H J, et al. Efficient radiative cooling and super-hydrophobic ZnO/P(VDF-HFP)-PDMS coated fabric[J]. Applied Thermal Engineering, 2025, 268: 125852.
doi: 10.1016/j.applthermaleng.2025.125852
[29] LU N, MENG Q, HOU X G, et al. Innovative fabrication and absorption enhancement in MgO-stabilized ZrO2/graphene composites[J]. Advanced Powder Technology, 2025, 36(1): 104731.
doi: 10.1016/j.apt.2024.104731
[30] 王清鹏, 张海艳, 王雨婷, 等. 聚环氧乙烷/Al2O3被动辐射降温膜的制备及其性能[J]. 纺织学报, 2024, 45(9): 33-41.
WANG Qingpeng, ZHANG Haiyan, WANG Yuting, et al. Preparation and properties of polyethylene oxide/Al2O3 passive radiative cooling membrane[J]. Journal of Textile Research, 2024, 45(9): 33-41.
[31] SONG X K, GONG H, LI H C, et al. Molecularly and structurally designed polyimide nanofiber radiative cooling films for spacecraft thermal management[J]. Advanced Functional Materials, 2025, 35(2): 2413191.
doi: 10.1002/adfm.v35.2
[32] 魏黎民. 多级结构聚偏氟乙烯基天空辐射制冷纤维材料的研究[D]. 武汉: 武汉纺织大学, 2024:41-42.
WEI Limin. Study of hierarchically structural polyvinylidene fluoride based radiative sky cooling fiber materials[D]. Wuhan: Wuhan Textile University, 2024:41-42.
[33] LI D, LIU X, LI W, et al. Scalable and hierarchically designed polymer film as a selective thermal emitter for high-performance all-day radiative cooling[J]. Nature Nanotechnology, 2021, 16(2): 153-158.
doi: 10.1038/s41565-020-00800-4 pmid: 33199884
[34] CHO Y, BAEK J W, SAGONG M, et al. Electrospinning and nanofiber technology: fundamentals, innovations, and applications[J]. Advanced Materials, 2025, 37(28): 2500162.
doi: 10.1002/adma.v37.28
[35] FARIDUL HASAN K M, CHEN J H, CHEN S R, et al. Advanced bioinspired personal thermoregulation textiles for outdoor radiative cooling[J]. ACS Applied Materials & Interfaces, 2025, 17(2): 3436-3447.
[36] GAO Z L, WANG Y J, PAN Y M, et al. Moisture-wicking fabric for radiation cooling[J]. Nano Research, 2025, 18(10): 94907537.
doi: 10.26599/NR.2025.94907537
[37] YANG P, JU Y S, HE J J, et al. Advanced Janus membrane with directional sweat transport and integrated passive cooling for personal thermal and moisture management[J]. Advanced Fiber Materials, 2024, 6(6): 1765-1776.
doi: 10.1007/s42765-024-00444-2
[38] ZHU Z J, LI Z Q, WU X H, et al. High-performance radiative cooling using a SiO2/PHBV fiber membrane with a micronano-multistage structure[J]. ACS Applied Materials & Interfaces, 2025, 17(23): 34625-34636.
[39] 曹济. 彩色量子点辐射制冷电纺薄膜的制备及性能研究[D]. 南京: 南京理工大学, 2023:36-38.
CAO Ji. Preparation and performance research of color quantum dot radiative cooling electrospinning textiles[D]. Nanjing: Nanjing University of Science and Technology, 2023:36-38.
[40] ZHANG Y L, YU J. Scalable and high-performance radiative cooling fabrics through an electrospinning method[J]. ACS Applied Materials & Interfaces, 2022, 14(40): 45707-45715.
[41] YAN Z, ZHU G H, FAN D S, et al. Bioinspired metafabric with dual-gradient Janus design for personal radiative and evaporative cooling[J]. Advanced Functional Materials, 2025, 35(2): 2412261.
doi: 10.1002/adfm.v35.2
[42] LI X, PATTELLI L, DING Z M, et al. A novel BST@TPU membrane with superior UV durability for highly efficient daytime radiative cooling[J]. Advanced Functional Materials, 2024, 34(23): 2315315.
doi: 10.1002/adfm.v34.23
[43] ZHU Z J, BASHIR A, WU X H, et al. Highly integrated phase change and radiative cooling fiber membrane for adaptive personal thermal regulation[J]. Advanced Functional Materials, 2025, 35(9): 2416111.
doi: 10.1002/adfm.v35.9
[44] MA C, GAO Y, CAO Y X, et al. Hierarchically core-shell nanofiber textiles for personal cooling in hot and humid conditions[J]. Nano Energy, 2024, 123: 109400.
doi: 10.1016/j.nanoen.2024.109400
[45] WU B, QI Q J, LIU L, et al. Wearable aerogels for personal thermal management and smart devices[J]. ACS Nano, 2024, 18(14): 9798-9822.
doi: 10.1021/acsnano.4c00967
[46] TONG J K, HUANG X P, BORISKINA S V, et al. Infrared-transparent visible-opaque fabrics for wearable personal thermal management[J]. ACS Photonics, 2015, 2(6): 769-778.
doi: 10.1021/acsphotonics.5b00140
[47] SONG Y N, MA R J, XU L, et al. Wearable polyethylene/polyamide composite fabric for passive human body cooling[J]. ACS Applied Materials & Interfaces, 2018, 10(48): 41637-41644.
[48] LIU R N, ZHAO S M, WU X K, et al. Radiative cooling meta-fabric integrated with knitting perspiration-wicking and coating heat conduction[J]. ACS Nano, 2025, 19(1): 826-836.
doi: 10.1021/acsnano.4c12196 pmid: 39810371
[49] ZHANG X, ZHANG T, CAO Y, et al. A Janus infrared emission dual-mode super-fabric for sustainable efficient thermal management[J]. Chemical Engineering Journal, 2025, 503: 158664.
doi: 10.1016/j.cej.2024.158664
[50] DONG J W, LIN K, ZHAO W J, et al. Stretchable thermoplastic polyurethane/boron nitride nanosheet fabrics with highly anisotropic thermal conductivity for multi-scenario passive radiative cooling[J]. Advanced Fiber Materials, 2025, 7(3): 841-852.
doi: 10.1007/s42765-025-00526-9
[51] SONG Y N, LI Y, YAN D X, et al. Novel passive cooling composite textile for both outdoor and indoor personal thermal management[J]. Composites Part A: Applied Science and Manufacturing, 2020, 130: 105738.
doi: 10.1016/j.compositesa.2019.105738
[52] LI M Z, YAN Z, FAN D S. Flexible radiative cooling textiles based on composite nanoporous fibers for personal thermal management[J]. ACS Applied Materials & Interfaces, 2023, 15(14): 17848-17857.
[53] YU H J, LU J Q, YAN J, et al. Selective emission fabric for indoor and outdoor passive radiative cooling in personal thermal management[J]. Nano-Micro Letters, 2025, 17(1): 192.
doi: 10.1007/s40820-025-01713-4 pmid: 40102320
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