[ 1 ] LI X M, TAO L, CHEN Z F, et al. Graphene and related two-dimensional materials:structure-property relationships for electronics and optoelectronics [J]. Applied Physics Reviews,2017,4(2):021306.
[ 2 ] 陶思轩,杨群,仇慧丽,等.碳纳米管的功能化及应用研究进展[J].化工新型材料,2023,51(12):1-8.
[ 3 ] 赵杨,黄琪,金波,等.富勒烯及其衍生物在含能材料领域的应用研究进展[J].火炸药学报,2022,45(6):770-784.
[ 4 ] 李文鹏,刘晴,杨志荣,等.液相剥离法高效制备石墨烯的研究进展[J].化工进展,2024,43(1):215-231.
[ 5 ] HUANG Y, SUTTER E, SHI N N, et al. Reliable exfoliation of large-area high-quality flakes of graphene and other two-dimensional materials [J]. ACS Nano,2015,9(11):10612-10620.
[ 6 ] STRAUSS V, MARSH K, KOWAL M D, et al. A simple route to porous graphene from carbon nanodots for supercapacitor applications [J]. Advanced Materials,2018,30(8):1704449.
[ 7 ] 马伟伟,冯丽娟,杨永启.石墨烯在新能源器件领域的研究进展[J].炭素技术,2023,42(5):1-6,59.
[ 8 ] 钱峰松.高品质石墨烯的低温制备及器件应用[D].北京:北京工业大学,2023.
[ 9 ] 刘青.大面积高质量石墨烯的制备及石墨烯场效应晶体管研究[D].昆明:云南大学,2023.
[10] ZHONG Y L,TIAN Z M,SIMON G P,et al. Scalable production of graphene via wet chemistry:progress and challenges [J]. Materials Today,2015,18(2):73-78.
[11] 李渝,胡志波,文兴青,等.石墨烯材料制备技术与创新及发展趋势[J].中国非金属矿工业导刊,2021(2):19-23.
[12] 施彤,邓巧云,李大纲.液相剥离法制备石墨烯导电油墨的研究进展[J].包装工程,2022,43(21):50-57.
[13] 郭茂,程刊,鲁圣军.剥离法制备少层石墨烯及其应用进展[J].化工新型材料,2022,50(3):45-49.
[14] 李韦韦,王刚,曹蕾,等.石墨烯的制备及其在NMP中分散性能研究[J].当代化工研究,2023(24):187-190.
[15] 曾洪亮,王秋香,温业成,等.石墨烯制备方法的研究进展[J].炭素技术,2021,40(5):8-13.
[16] ZHOU Y,XIE C X,SU L,et al. Study of the risks of the graphene oxide preparation process by reaction calorimetry [J]. Journal of Thermal Analysis and Calorimetry,2020,139(1):101-112.
[17] Di BERARDINO C,BéLTEKY P,SCHMITZ F,et al. Controlled size reduction of liquid exfoliated graphene micro-sheets via tip sonication [J]. Crystals,2020,10(11):1049.
[18] 王娇,刘凌波,魏飘飘,等.液相剥离石墨烯的电化学传感应用[J].分析科学学报,2021,37(4):466-472.
[19] 宋倩倩.石墨烯制备工艺专利分析[J].中国科技信息,2023(18):12-14.
[20] LI Z L,YOUNG R J,BACKES C,et al. Mechanisms of liquid-phase exfoliation for the production of graphene [J]. ACS Nano,2020,14(9):10976-10985.
[21] GAI Y Z, WANG W C, XIAO D, et al. Exfoliation of graphite into graphene by a rotor-stator in supercritical CO2:experiment and simulation [J]. Industrial & Engineering Chemistry Research,2018,57(24):8220-8229.
[22] GAO Y H, SHI W, WANG W C, et al. Ultrasonic-assisted production of graphene with high yield in supercritical CO2 and its high electrical conductivity film[J]. Industrial & Engineering Chemistry Research,2014,53(7):2839-2845.
[23] GAI Y Z, WANG W C, XIAO D, et al. Ultrasound coupled with supercritical carbon dioxide for exfoliation of graphene:simulation and experiment [J]. Ultrasonics Sonochemistry,2018,41:181-188.
[24] TYURNINA A V,TZANAKIS I,MORTON J,et al. Ultrasonic exfoliation of graphene in water:a key parameter study [J]. Carbon,2020,168:737-747.
[25] GAO H Y, ZHU K X, HU G X, et al. Large-scale graphene production by ultrasound-assisted exfoliation of natural graphite in supercritical CO2/H2O medium [J]. Chemical Engineering Journal,2017,308:872-879.
[26] BAIG Z, MAMAT O, MUSTAPHA M, et al. Investigation of tip sonication effects on structural quality of graphene nanoplatelets (GNPs) for superior solvent dispersion [J]. Ultrasonics Sonochemistry,2018,45:133-149.
[27] 许晓丹.超临界CO2条件下芘基聚合物液相剥离和分散石墨烯的分子动力学模拟[D].郑州:郑州大学,2017.
[28] CHOI H K, OH Y, JUNG H, et al. Influences of carboxyl functionalization of intecalators on exfoliation of graphite oxide:a molecular dynamics simulation [J]. Physical Chemistry Chemical Physics,2018,20(45):28616-28622.
[29] HARRIS J G, YUNG K H. Carbon dioxide’s liquid-vapor coexistence curve and critical properties as predicted by a simple molecular model [J]. The Journal of Physical Chemistry,1995,99(31):12021-12024.
[30] CAI L,HOU S S, WEI X Y, et al. Exfoliation and stabilization mechanism of graphene in carbon dioxide expanded organic solvents:molecular dynamics simulations [J]. Physical Chemistry Chemical Physics,2020,22(4):2061-2072.
[31] BUSSI G, DONADIO D, PARRINELLO M. Canonical sampling through velocity rescaling [J]. The Journal of Chemical Physics,2007,126(1):014101.
[32] BERENDSEN H J C, POSTMA J P M, van GUNSTEREN W F,et al. Molecular dynamics with coupling to an external bath [J]. The Journal of Chemical Physics,1984,81(8):3684-3690.
[33] 雷德,蔡璐.压缩二氧化碳和甲基吡咯烷酮剥离石墨烯的分子动力学模拟[J].武汉工程大学学报,2023,45(1):48-55.