垂直直立石墨烯纳米墙的制备及光热感应
PDF下载 (423)赵梦晗,陈 肖,李久荣,朱 伟,杨志军,丁 瑞,王 刚,陈 达*.垂直直立石墨烯纳米墙的制备及光热感应[J].宁波大学学报(理工版),2019,32(6):82-86.DOI:
ZHAO Menghan,CHEN Xiao,LI Jiurong,ZHU Wei,YANG Zhijun,DING Rui,WANG Gang,CHEN Da*.Synthesis of vertical graphene nanowall and its photothermal study[J].Journal of Ningbo University(Natural Science & Engineering Edition),2019,32(6):82-86.DOI:
| Title: | Synthesis of vertical graphene nanowall and its photothermal study |
| 作者: | 赵梦晗, 陈 肖, 李久荣, 朱 伟, 杨志军, 丁 瑞, 王 刚, 陈 达* |
| Author(s): | ZHAO Menghan, CHEN Xiao, LI Jiurong, ZHU Wei, YANG Zhijun, DING Rui, WANG Gang, CHEN Da* |
| 关键词: | plasma enhanced chemical vapor deposition (PECVD); graphene nanowalls; specific surface area; photothermal |
| Keywords: | plasma enhanced chemical vapor deposition (PECVD); graphene nanowalls; specific surface area; photothermal |
| 分类号: | — |
| 文献标识码: | A |
| 摘要: | (中文摘要详见PDF。) |
| Abstract: | Based on plasma enhanced chemical vapor deposition (PECVD) technology, three-dimensional (3D) vertically-oriented graphene nanowalls are successfully synthesized on insulating substrate glass by adjusting experimental parameters. During the growth process, the mass and size of graphene are related to the corresponding growth time. Using Raman spectroscopy (Raman), scanning electron microscopy (SEM), and atomic force microscopy (AFM), etc., the graphene nanowalls are characterized. Moreover, using the ultra-high specific surface area and the excellent heat dissipation characteristics of graphene nanowalls, it is found of good photothermal response feature of vertically-oriented graphene nanosheets-glass hybrid materials, which is expected to promote the use of vertically-oriented graphene nanosheet-glass hybrid materials in transparent solar thermal installations and green warm building materials |
| 参考文献 /References: | [1].Novoselov K S, Jiang Z, Zhang Y, et al. Room- temperature quantum Hall effect in graphene[J]. Science, 2007, 315(5817):1379. [2].罗宏超, 王微, 陈识璞, 等. 碳纳米墙场发射冷阴极电场性质研究[J]. 南京工业职业技术学院学报, 2013, 13(2):13-16. [3].Ando Y, Zhao X, Ohkohchi M. Production of petal-like graphite sheets by hydrogen arc discharge[J]. Carbon, 1997, 35(1):153-158. [4].Hiramatsu M, Hori M. Carbon nanowalls: Synthesis and emerging applications[M]. New York: Springer, 2010. [5].王, 刘宇. 碳化硅上站立石墨烯的生长[J]. 石化技术, 2017, 24(2):297. [6].Kim S Y, Choi W S, Lee J H, et al. Substrate temperature effect on the growth of carbon nanowalls synthesized via microwave PECVD[J]. Materials Research Bulletin, 2014, 58:112-116. [7].Wang B B, Zheng K, Cheng Q J, et al. Plasma effects in aligned carbon nanoflake growth by plasma-enhanced hot filament chemical vapor deposition[J]. Applied Surface Science, 2015, 325:251-257. [8].Kim Y S, Lee J H, Kim Y D, et al. Methane as an effective hydrogen source for single-layer graphene synthesis on Cu foil by plasma enhanced chemical vapor deposition[J]. Nanoscale, 2012. 5(3):1221-1226. [9].Ghasemi H, Ni G, Marconnet A M, et al. Solar steam generation by heat localization[J/OL]. Nature Communica- tions, 2014, 5(5):4449 [2017-10-17]. https://www.nature. com/articles/ncomms5449.pdf. [10].Zhang L, Tang B, Wu J, et al. Hydrophobic light-to-heat conversion membranes with self-healing ability for interfacial solar heating[J]. Advanced Materials, 2015, 27(23):4889-4894. [11].Wang J, Li Y, Deng L, et al. High-performance photothermal conversion of narrow-bandgap Ti2O3 nano- particles[J/OL]. Advanced Materials, 2016, 29(3):1603730 [2018-04-18]. https://doi.org/10.1002/adma.201603730. [12].Yang P, Liu K, Chen Q, et al. Solar-driven simultaneous steam production and electricity generation from salinity [J]. Energy & Environmental Science, 2017, 10(9):1923- 1927. [13].Shannon M A, Bohn P W, Elimelech M, et al. Science and technology for water purification in the coming decades [J]. Nature, 2008, 452(7185):301-310. [14].Ni G, Li G, Boriskina S V, et al. Steam generation under one sun enabled by a floating structure with thermal concentration[J/OL]. Nature Energy, 2016, 1:16126 [2017- 12-07]. https://www.nature.com/articles/nenergy2016126. [15].Sutton A, Shirman T, Timonen J V I, et al. Photothermally triggered actuation of hybrid materials as a new platform for in vitro cell manipulation[J/OL]. Nature Communica- tions, 2017, 8:14700 [2018-05-22]. https://www.nature. com/articles/ncomms14700.pdf. [16].Lim D K, Barhoumi A, Wylie R G, et al. Enhanced photothermal effect of plasmonic nanoparticles coated with reduced graphene oxide[J]. Nano Letters, 2013, 13(9):4075-4079. [17].Jiang Q, Tian L, Liu L L, et al. Bilayered biofoam for highly efficient solar steam generation[J]. Advanced Materials, 2016, 28(42):9400-9407. [18].Hessel C M, Pattani V P, Rasch M, et al. Copper selenide nanocrystals for photothermal therapy[J]. Nano Letters, 2011, 11(6):2560-2566. [19].Raut H K, Ganesh V A, Nair A S, et al. Anti-reflective coatings: A critical, in-depth review[J]. Energy & Environmental Science, 2011, 4(10):3779-3804. [20].Kulkarni S B, Patil U M, Shackery I, et al. High- performance supercapacitor electrode based on a poly- aniline nanofibers/3D graphene framework as an efficient charge transporter[J]. Journal of Materials Chemistry A, 2014, 2(14):4989-4998. [21].Sun H, Mei L, Liang J, et al. Three-dimensional holey- graphene/niobia composite architectures for ultrahigh-rate energy storage[J]. Science, 2017, 356(6338):599-604. [22].Ito Y, Tanabe Y, Han J, et al. Multifunctional porous graphene for high-efficiency steam generation by heat localization[J]. Advanced Materials, 2015, 27(29):4302- 4307. [23].Hu X, Xu W, Zhou L, et al. Tailoring graphene oxide-based aerogels for efficient solar steam generation under one sun[J/OL]. Advanced Materials, 2017, 29(5): 1604031 [2018-04-09]. https://doi.org/10.1002/adma.201 604031. [24].Ren H, Tang M, Guan B, et al. Hierarchical graphene foam for efficient omnidirectional solar-thermal energy conversion[J/OL]. Advanced Materials, 2017, 29(38): 1702590 [2018-06-15]. https://doi.org/10.1002/adma.201 702590. [25].Ferrari A C, Meyer J C, Scardaci V, et al. Raman spectrum of graphene and graphene layers[J/OL]. Physical Review Letters, 2006, 97(18):187401 [2018-03- 21]. https://doi.org/10.1103/PhysRevLett.97.187401. [26].Ferrari A C. Raman spectroscopy of graphene and graphite: Disorder, electron-phonon coupling, doping and nonadiabatic effects[J]. Solid State Communications, 2007, 143(1):47-57. [27].Malard L M, Pimenta M A, Dresselhaus G, et al. Raman spectroscopy in graphene[J]. Physics Reports, 2009, 473(5): 51-87. [28].Cancado L G, Takai K, Enoki T, et al. General equation for the determination of the crystallite size La of nano- graphite by Raman spectroscopy[J/OL]. Applied Physics Letters, 2006, 88(16):163106 [2017-10-13]. https://doi. org/10.1063/1.2196057. |
| 备注/Memo: | 收稿日期: 2018-11-21. 宁波大学学报(理工版)网址 http://journallg.nbu.edu.cn/基金项目: 国家自然科学基金(61604084, 11704204).第一作者: 赵梦晗(), 女, 辽宁锦州石墨烯材料制备zhaomenghan37862@outlook.com 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |