Abstract:Functional materials with photothermal conversion ability which can convert light energy into thermal energy have been reviewed,including metal and metal oxide nanomaterials,carbon nanomaterials,black phosphorus and conjugated polymers. The materials can be used for heating,generating steam,micro electricity generating and shape memory to satisfy the application requirements in different situation. Photothermal conversion materials are expected to alleviate the problem of energy shortage and realize the recycling of water resources,as well as potentially be applied in the areas such as photothermal therapy,sterilization,micro generator and shape memory.
[1] Chen Meijie,He Yurong,Huang Jian,et al. Synthesis and solar photo-thermal conversion of Au,Ag,and Au-Ag blended plasmonic nanoparticles[J]. Energy Convers Manage,2016,127(1):293-300. [2] Yao Jiandong,Zheng Zhaoqiang,Yang Guowei. Layered tin monoselenide as advanced photothermal conversion materials for efficient solar energy-driven water evaporation[J]. Nanoscale,2018,10(6):2876-2886. [3] Chala T F,Wu Changmou,Chou Minhui,et al. Highly efficient near infrared photothermal conversion properties of reduced tungsten oxide/polyurethane nanocomposites[J]. Nanomaterials,2017,7(7):191. [4] 李欣远,纪穆为,涂国鹏,等. 近红外光热转换纳米晶研究进展[J]. 中国光学,2017,10(5):541-554. [5] Cheng Liang,Wang Chao,Feng Liangzhu,et al. Functional nanomaterials for phototherapies of cancer[J]. Chem Rev,2014,114(21):10869-10939. [6] Jaque D,Maestro L M,del RoSal B,et al. Nanoparticles for photothermal therapies[J]. Nanoscale,2014,6(16):9494-9530. [7] 鲁闻生,王海飞,张建平,等. 金纳米棒的制备、生长机理及纯化[J]. 化学进展,2015,27(7):785-793. [8] Huang Xiaohua,Neretina S,El-Sayed M A. Gold nanorods:From synthesis and properties to biological and biomedical applications[J]. Adv Mater,2009,21(48):4880-4910. [9] Liu Yiming,Chen Jingwei,Guo Dawei,et al. Floatable,self-cleaning,and carbon-black-based superhydrophobic gauze for the solar evaporation enhancement at the air-water interface[J]. ACS Appl Mater Interfaces,2015,7(24):13645-13652. [10] Wang Yuchao,Wang Canzhu,Song Xiangju,et al. A facile nanocomposite strategy to fabricate rGO-MWCNT photothermal layer for efficient water evaporation[J]. J Mater Chem A,2018,6(3):963-971. [11] Zhang Panpan,Li Jing,Lü Lingxiao,et al. Vertically aligned graphene sheets membrane for highly efficient solar thermal generation of clean water[J]. ACS Nano,2017,11(5):5087-5093. [12] Shi Le,Wang Yuchao,Zhang Lianbin,et al. Rational design of a bi-layered reduced graphene oxide film on polystyrene foam for solar-driven interfacial water evaporation[J]. J Mater Chem A,2017,5(31):16212-16219. [13] Xu Xuan,Chen G Y,Zhang Wei,et al. A plant-transpiration-process-inspired strategy for highly efficient solar evaporation[J]. Adv Sustainable System,2017,1(6):1700046. [14] Wang Gang,Fu Yang,Ma Xiaofei,et al. Reusable reduced graphene oxide based double-layer system modified by polyethylenimine for solar steam generation[J]. Carbon,2017,114(1):117-124. [15] Ren Huaying,Tang Miao,Guan Baolu,et al. Hierarchical graphene foam for efficient omnidirectional solar-thermal energy conversion[J]. Doi:10.1002/adma. 201702590. [16] Zhang Lianbin,Li Renyuan,Tang Bo,et al. Solar-thermal conversion and thermal energy storage of graphene foam-based composites[J]. Nanoscale,2016,8(30):14600-14607. [17] He Yonglin,Liao Shenglong,Jia Hanyu,et al. A self-healing electronic sensor based on thermal-sensitive fluids[J]. Adv Mater,2015,27(31):4622-4627. [18] Cao Yuanyuan,Dou Jinhu,Zhao Ningjiu,et al. Highly efficient NIR-Ⅱ photothermal conversion based on an organic conjugated polymer[J]. Chem Mater,2017,29(2):718-725. [19] Xu Xiaoqi,Wang Zheng,Li Ruiting,et al. A degradable and recyclable photothermal conversion polymer[J]. Chem Eur J,2018,24(39):9769-9772. [20] Li Ruiting,Wang Zhen,Han Peng,et al. Refreshing rubbers as customized photothermal conversion materials through post-darkening modeling production[J]. Chem Eur J,2017,23(71):17889-17893. [21] Chen Qiaomei,Pei Zhiqiang,Xu Yanshuang,et al. A durable monolithic polymer foam for efficient solar steam generation[J]. Chem Sci,2017,9(3):623-628. [22] Chen Qiaomei,Yu Xiaowen,Pei Zhiqiang,et al. Multi-stimuli responsive and multi-functional oligoaniline-modified vitrimers[J]. Chem Sci,2017,8(1):724-733. [23] Han Peng,Zhang Xiaohong,Qiao Jinliang. Intrinsically conductive polymer fibers from thermoplastic trans-1, 4-polyisoprene[J]. Langmuir,2016,32(19):4904-4908. [24] Li Likai,Yu Yijun,Ye Guojun,et al. Black phosphorus field-effect transistors[J]. Nat Nanotechnol,2014,9(5):372-377. [25] Churchill H O H,Jarillo-Herrero P. Two-dimensional crystals:Phosphorus joins the family[J]. Nat Nanotechnol,2014,9(5):330-331. [26] Shao Jundong,Xie Hanhan,Huang Hao,et al. Biodegradable black phosphorus-based nanospheres for in vivo photothermal cancer therapy[J]. Nat Commun,2016,7:12967. [27] Sun Zhengbo,Xie Hanhan,Tang Siying,et al. Ultrasmall black phosphorus quantum dots:Synthesis and use as photothermal agent[J]. Angew Chem Int Ed,2015,54(39):11526-11530. [28] 郑伟,孙正明,张培根,等. 二维纳米材料MXene的研究进展[J]. 材料导报,2017,31(5):1-14. [29] 张建峰,曹惠杨,王红兵. 新型二维材料MXene的研究进展[J]. 无机材料学报,2017,32(6):561-570.
[30] Li Renyuan,Zhang Lianbin,Shi Le,et al. MXene Ti3C2:An effective 2D light-to-heat conversion material[J]. ACS Nano,2017,11(4):3752-3759. [31] 熊涛,何美凤. 光热转换材料及太阳能热水器的现状和发展方向[J]. 材料导报,2010,24(10):57-60. [32] 阮胜. 居住建筑太阳能热水系统高效热利用方法研究[D]. 南宁:广西大学,2018. [33] 胡映宁,陈强,王野. 太阳能热水器市场发展趋势的研究[J]. 建筑节能,2018,46(10):128-131. [34] Li Xiuqiang,Lin Renxing,Ni G,et al. Three-dimensional artificial transpiration for efficient solar waste water treatment[J]. Nat Sci Rev,2017,5(1):70-77. [35] Xu Ning,Hu Xiaozhen,Xu Weichao,et al. Mushrooms as efficient solar steam-generation devices[J]. Doi:10.1002/adma. 201606762. [36] Zhou Lin,Tan Yingling,Ji Dengxin,et al. Self-assembly of highly efficient,broadband plasmonic absorbers for solar steam generation[J]. Sci Adv,2016,2(4):e1501227. [37] Zhou Lin,Tan Yingling,Wang Jingyang,et al. 3D self-assembly of aluminium nanoparticles for plasmon-enhanced solar desalination[J]. Nat Photonics,2016,10(6):393-398. [38] Zhou Lin,Zhuang Shendong,He Chengyu,et al. Self-assembled spectrum selective plasmonic absorbers with tunable bandwidth for solar energy conversion[J]. Nano Energy,2017,32(1):195-200. [39] Xu Weichao,Hu Xiaozhen,Zhuang Shendong,et al. Flexible and salt resistant janus absorbers by electrospinning for stable and efficient solar desalination[J]. Adv Energy Mater,2018,8(14):1702884. [40] Shi Y,Li Renyuan,Jin Yong,et al. A 3D photothermal structure toward improved energy efficiency in solar steam generation[J]. Joule,2018,2(6):1171-1186. [41] Nan Kewang,Kang Dongmin,Li Kan,et al. Compliant and stretchable thermoelectric coils for energy harvesting in miniature flexible devices[J]. Sci Adv,2018,4(11):eaau5849. [42] Yang Xiao,Cheng Mengjiao,Zhang Lina,et al. Electricity generation through light-responsive diving-surfacing locomotion of a functionally cooperating smart device[J]. Doi:0.1002/adma. 201803125. [43] Liu Li,Liu Meihua,Deng Linlin,et al. Near-infrared chromophore functionalized soft actuator with ultrafast photoresponsive speed and superior mechanical property[J]. J Am Chem Soc,2017,139(33):11333-11336. [44] Lim H,Park T,Na J,et al. Construction of a photothermal venus flytrap from conductive polymer bimorphs[J]. NPG Asia Mater,2017,9(6):e399. [45] Wang Peng. Emerging investigator series:The rise of nano-enabled photothermal materials for water evaporation and clean water production by sunlight[J]. Environ Sci Nano,2018,5(5):1078-1089. [46] Jin Yong,Chang Jian,Shi Yusuf,et al. Highly flexible and washable nonwoven photothermal cloth for efficient and practical solar steam generation[J]. J Mater Chem A,2018,6(17):7942-7949. [47] 陈瑞,王晶,乔宏志. 有机光热转换材料及其在光热疗法中的应用[J]. 化学进展,2017,29(2/3):329-336. [48] Liu Yanlan,Ai Kelong,Liu Jianhua,et al. Dopamine-melanin colloidal nanospheres:An efficient near-infrared photothermal therapeutic agent for in vivo cancer therapy[J]. Adv Mater,2013,25(9):1353-1359. [49] Li Shengliang,Wang Xiaoyu,Hu Rong,et al. Near-infrared (NIR)-absorbing conjugated polymer dots as highly effective photothermal materials for in vivo cancer therapy[J]. Chem Mater,2016,28(23):8669-8675. [50] Yuan Huanxiang,Wang Bing,Lü Fengting,et al. Conjugated-polymer-based energy-transfer systems for antimicrobial and anticancer applications[J]. Adv Mater,2014,26(40):6978-6982. [51] Zhu Chunlei,Liu Libing,Yang Qiong,et al. Water-soluble conjugated polymers for imaging,diagnosis,and therapy[J]. Chem Rev,2012,112(8):4687-4735. [52] Wang Bing,Yuan Huanxiang,Liu Zhang,et al. Cationic oligo(p-phenylene vinylene) materials for combating drug resistance of cancer cells by light manipulation[J]. Adv Mater,2014,26(34):5986-5990. [53] Li Jinlei,Du Meihang,Lü Guangxin,et al. Interfacial solar steam generation enables fast-responsive,energy-efficient,and low-cost off-grid sterilization[J]. Doi:10.1002/adma. 201805159. [54] Li Ruiting,Lian Xiaodong,Wang Zhen,et al. Radical cation-initiated surface polymerization on photothermal rubber for smart antifouling coatings[J]. Chem Eur J,2019,25(1):183-188.