用户名: 密码: 验证码:
石墨相碳化氮(g-C_3N_4)纳米材料在分析化学中的应用进展
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Application of Graphitic Carbon Nitride Nanomaterials(g-C_3N_4) in Analytical Chemistry
  • 作者:刘勤 ; 曹玉娟 ; 朱德斌 ; 郭慢丽 ; 俞英
  • 英文作者:LIU Qin;CAO Yu-juan;ZHU De-bin;GUO Man-li;YU Ying;Guangzhou Key Laboratory of Analytical Chemistry for Biomedicine,School of Chemistry and Environment,South China Normal University;
  • 关键词:石墨相碳化氮 ; 纳米材料 ; 分析化学 ; 综述
  • 英文关键词:graphitic carbon nitride;;nanomaterials;;analytical chemistry;;review
  • 中文刊名:分析测试学报
  • 英文刊名:Journal of Instrumental Analysis
  • 机构:华南师范大学化学与环境学院广州生物医药分析化学重点实验室;
  • 出版日期:2019-09-25
  • 出版单位:分析测试学报
  • 年:2019
  • 期:09
  • 基金:国家自然科学基金(81772246,81371877,21605052,21575043,51478196);; 广东省特支人才计划(2016TQ03R749)
  • 语种:中文;
  • 页:124-133
  • 页数:10
  • CN:44-1318/TH
  • ISSN:1004-4957
  • 分类号:O652;TB383.1
摘要
石墨相碳化氮(g-C_3N_4)具有类似于石墨烯的片层结构,其独特的电子能带结构、热稳定性以及高化学稳定性,优异的光学、电学性质,使之在生物成像、光、电传感器方面具有广阔的应用前景。该文综述了g-C_3N_4纳米材料在电化学、光学分析等分离分析方面的应用进展,并展望了其发展前景。
        Graphitic carbon nitride(g-C_3N_4) is a nitrogen-rich carbon material with planar graphene-like structure,which has received increasingly research interests in recent years.g-C_3N_4 nano-materials have a broad prospect in optical and electrochemical sensors and bio-imaging in analytical chemistry due to their remarkable physicochemical properties,such as electronic band structure,optical and electronic properties,high thermal and chemical stability.An overview on the applications of g-C_3N_4 nano-materials in fields of optical analysis and electro-analysis,etc.is presented in this review.And their further development prospect is also discussed.
引文
[1] Fina F,Callear S K,Carins G M,Irvine J T S.Chem.Mater.,2015,27(7):2612-2618.
    [2] Molina B,Sansores L E.Mod.Phys.Lett.B,1999,13(06n07):193-201.
    [3] Zhang J S,Wang B,Wang X C.Acta Phys.-Chim.Sin.(张金水,王博,王心晨.化学进展),2013,29(9):1865-1876.
    [4] Liu J,Wang H,Antonietti M.Chem.Soc.Rev.,2016,45(8):2308-2326.
    [5] Wang Q B,Wang W,Lei J P,Xu N,Gao F L,Ju H X.Anal.Chem.,2013,85(24):12182-12188.
    [6] Cao S W,Low J X,Yu J G,Jaroniec M.Adv.Mater.,2015,27(13):2150-2176.
    [7] Liu C Q,Chen Z W,Wang Z Z,Li W,Ju E G,Yan Z Q,Qu X.Nanoscale,2016,8(25):12570-12578.
    [8] Zhang X D,Wang H X,Wang H,Zhang Q,Xie J F,Tian Y P,Wang J,Xie Y.Adv.Mater.,2014,26(26):4438-4443.
    [9] Cheng N,Jiang P,Liu Q,Tian J,Asiri A M,Sun X.Analyst,2014,139(20):5065-5068.
    [10] Liu Q,Zhu D B,Guo M L,Yu Y,Cao Y J.Chin.Lett.,2019,30(9):1039-1642.
    [11] Tian J Q,Liu Q,Ge C J,Xing Z C,Asiri A M,Al-Youbi A O,Sun X P.Nanoscale,2013,5(19):8921-8924.
    [12] Zhang G G,Zhang J S,Zhang M W,Wang X C.J.Mater.Chem.,2012,22(16):8083-8091.
    [13] Wang X C,Maeda K,Thomas A,Takanabe K,Xin G,Carlsson J M,Antonietti M.Nat.Mater.,2009,8(1):76-80.
    [14] Takanabe K,Kamata K,Wang X,Antonietti M,Kubota J,Domen K.Phys.Chem.Chem.Phys.,2010,12(40):13020-13025.
    [15] Dong G H,Zhang L Z.J.Mater.Chem.,2012,22(3):1160-1166.
    [16] Chai B,Peng T Y,Mao J,Li K,Zan L.Phys.Chem.Chem.Phys.,2012,14(48):16745-16752.
    [17] Rong M C,Lin L P,Song X H,Wang Y R,Zhong Y X,Yan J W,Chen X.Biosens.Bioelectron.,2015,68:210-217.
    [18] Jiang Z,Le S K,Xie Y J,Huang Q Y,Wang B,Jiang T S.J.Nanosci.Nanotechnol.,2019,19(2):721-728.
    [19] Ma H M,Zhao Y H,Li L,Wang H,Wei Q.Talanta,2018,188:729-735.
    [20] Chen L C,Huang D J,Ren S Y,Dong T Q,Chi Y W,Chen G N.Nanoscale,2013,5(1):225-230.
    [21] Groenewolt M,Antonietti M.Adv.Mater.,2005,17(14):1789-1792.
    [22] Chen X,Liu Q,Wu Q L,Du P W,Zhu J,Dai S Y,Yang S F.Adv.Funct.Mater.,2016,26(11):1719-1728.
    [23] Chan M H,Chen C W,Lee I J,Chan Y C,Tu D,Hsiao M,Liu R S.Inorg.Chem.,2016,55(20):10267-10277.
    [24] Liu J,Antonietti M.Energ.Environ.Sci.,2013,6(5):1486-1493.
    [25] Ge L,Han C C,Xiao X L,Guo L L.Appl.Catal.B,2013,142:414-422.
    [26] Ge L,Han C C,Liu J.J.Mater.Chem.,2012,22(23):11843-11850.
    [27] Yin S M,Han J Y,Zhou T H,Xu R.Catal.Sci.Technol.,2015,5(12):5048-5061.
    [28] Ye S,Wang R,Wu M Z,Yuan Y P.Appl.Surf.Sci.,2015,358:15-27.
    [29] Zhao Z W,Sun Y J,Dong F.Nanoscale,2015,7(1):15-37.
    [30] Tang Y,Zhang W D.J.Instrum.Anal.(唐跃,张伟德.分析测试学报),2013,32(12):1443-1447.
    [31] Hang S Z,Kang T F,Lu L P.J.Instrum.Anal.(黄素珍,康天放,鲁理平.分析测试学报),2016,1:48-53.
    [32] Liu Q.Preparation of Graphene-like Carbon Nitride Nanomaterials and Its Application in Environmental Analysis.Guangzhou:South China Normal University(刘勤.类石墨烯氮化碳纳米材料的制备及其在环境分析中的应用研究.广州:华南师范大学).2019.
    [33] Zhan T R,Tian X,Ding G Y,Liu X,Wang L,Teng H N.Sens.Actuators B.,2019,283:463-471.
    [34] Balasubramanian P,Settu R,Chen S M,Chen T W.Microchim.Acta,2018,185(8):396.
    [35] Zou J,Mao D,Wee A T S,Jiang J.Appl.Surf.Sci.,2019,467:608-618.
    [36] Liu L,Wang M,Wang C Y.Electrochim.Acta,2018,265:275-283.
    [37] Rajkumar C,Veerakumar P,Chen S M.ACS Sustain.Chem.Eng.,2018,6(12):16021-16031.
    [38] Dong G Z,Fan H Q,Fu K,Ma L T,Zhang S J,Zhang M C,Wang W J.Compos.Part B,2019,162:369-377.
    [39] Zhou X,Yang L,Tan X P,Zhao G F,Xie X G,Du G B.Biosens.Bioelectron.,2018,112:31-39.
    [40] Sun A L,Qi Q A.Analyst,2016,141(14):4366-4372.
    [41] Tabrizi M A,Shamsipur M,Saber R,Sarkar S,Ebrahimi V.Biosens.Bioelectron.,2017,98:113-118.
    [42] Wang M,Yin H,Zhou Y,Sui C,Wang Y,Meng X,Ai S.Biosens.Bioelectron.,2019,128:137-143.
    [43] Wang Y,Li X,Waterhouse G I,Zhou Y L,Yin H S,Ai S Y.Talanta,2019,196:197-203.
    [44] Mohamed M A,Zain M F M,Minggu L J,Kassim M B,Jaafar J,Amin N A S,Ng Y H.Appl.Surf.Sci.,2019,476:205-220.
    [45] Kong W Q,Zhang X F,Chang B B,Zhou Y N,Zhang S R,He G L,Li J J.Electrochim.Acta,2018,282:767-774.
    [46] Sun B,Dong J,Cui L,Feng T T,Zhu J J,Liu X H,Ai S Y.Biosens.Bioelectron.,2019,124:1-7.
    [47] Li P P,Cao Y,Mao C J,Jin B K,Zhu J J.Anal.Chem.,2018,91(2):1563-1570.
    [48] Sui C J,Liu F,Tang L H,Li X,Zhou Y L,Yin H S,Ai S Y.Microchim.Acta,2018,185(12):541.
    [49] Liu Y X,Ma H M,Zhang Y,Pang X H,Fan D W,Wu D,Wei Q.Biosens.Bioelectron.,2016,86:439-445.
    [50] Li P P,Liu X P,Mao C J,Jin B K,Zhu J J.Anal.Chim.Acta,2019,1048:42-49.
    [51] Peng B,Tang L,Zeng G M,Fang S Y,Ouyang X L,Long B Q,Wang J J.Biosens.Bioelectron.,2018,121:19-26.
    [52] Wang Y,Zhou Y L,Xu L,Han Z W,Yin H S,Ai S Y.Sens.Actuators B.,2018,257:237-244.
    [53] Wang S,Liu R Q,Li C C.Nanoscale Res.Lett.,2018,13(1):235.
    [54] Yang C L,Wang X,Liu H Y,Ge S G,Yu J H,Yan M.New J.Chem.,2017,41(9):3374-3379.
    [55] Kadam A N,Moniruzzaman M,Lee S W.Molecules,2019,24(3):450-458.
    [56] Tang W H,Tian Y,Li B P,Liu Q H,Wang D Q,Jing X F,Xu S Q.Spectro.Acta A,2019,210:341-347.
    [57] Guo X F,Wu Q F,Wang X L,Wang L Y,Ma Y G,He Q Y.J.Instrum.Anal.(郭小峰,吴启凡,王咸力,王丽影,马元功,何勤怡.分析测试学报),2018,34(6):709-715.
    [58] Tian J Q,Liu Q,Asiri A M,Al-Youbi A O,Sun X P.Anal.Chem.,2013,85(11):5595-5599.
    [59] Liu Y S,Qu B H,Li Z J,Yan R,Li P,Zhang Z S,Jing L Q.Mater.Res.Bull.,2019,112:9-15.
    [60] Salehnia F,Hosseini M,Ganjali M R.Microchim.Acta,2017,184(7):2157-2163.
    [61] Zhou Y J,Li L,Wan Y H,Chen T T,Chu X.Anal.Methods,2018,10(42):5084-5090.
    [62] Rong M C,Lin L P,Song X H,Wang Y R,Zhong Y X,Yan J W,Chen X.Biosens.Bioelectron.,2015,68:210-217.
    [63] Rong M C,Song X H,Zhao T T,Yao Q H,Wang Y R,Chen X.J.Mater.Chem.C,2015,3(41):10916-10924.
    [64] Wang H Y,Lu Q J,Li M X,Li H,Liu Y L,Li H T,Yao S Z.Anal.Chim.Acta,2018:1027:121-129.
    [65] Wang S.J.Alloy.Compd.,2019,770:952-958.
    [66] Duan J L,Zhang Y H,Yin Y B,Li H S,Wang J,Zhu L S.Sens.Actuators B.,2018,257:504-510.
    [67] Zhuang Q F,Guo P,Zheng S,Lin Q,Lin Y L ,Wang Y,Ni Y N.Talanta,2018,188:35-40.
    [68] Dong J,Zhao Y L,Wang K Q,Chen H Y,Liu L,Sun B L,Dong L F.Chem.Select,2018,3(44):12696-12703.
    [69] Zhang X D,Wang H X,Wang H,Zhang Q,Xie J F,Tian Y P,Xie Y.Adv.Mater.,2014,26(26):4438-4443.
    [70] Liu X,Zhang H,Song Z,Guo L,Fu F,Wu Y.Biosens.Bioelectron.,2019,24(3):450-457.
    [71] Liao X J,Wang Q B,Ju H X.Analyst,2015,140(12):4245-4252.
    [72] Liao X J,Wang Q B,Ju H X.Chem.Commun.,2014,50(88):13604-13607.
    [73] Jin Y C,Kang Q,Guo X L,Zhang B,Shen D Z,Zou G Z.Anal.Chem.,2018,90(21):12930-12936.
    [74] Feng Q M,Shen Y Z,Li M X,Zhang Z L,Zhao W,Xu J J,Chen H Y.Anal.Chem.,2015,88(1):937-944.
    [75] Liang R P,Yu L D,Tong Y J,Wen S.H,Cao S P,Qiu J.Chem.Commun.,2018,54(99):14001-14004.
    [76] Fu X L,Hou F,Liu F R,Ren S W,Cao J T,Liu Y M.Biosens.Bioelectron.,2019,129:72-78.
    [77] Wang Y F,Guo W W,Jia N Q.Chemelectrochem,2018,5(23):3786-3792.
    [78] Sun Y N,Wang Y,Yang Y W,Yang M L.Chem.Lett.,2018,48(3):215-218.
    [79] Zhou Z X,Shang Q W,Shen Y F,Zhang L Q,Zhang Y Y,Lv Y Q,Zhang Y J.Anal.Chem.,2016,88(11):6004-6010.
    [80] Liu Q,Peng Y J,Xu J C,Ma C,Li L,Mao C J,Zhu J J.ChemElectroChem,2017,4(7):1768-1774.
    [81] Wang B X,Wang H J,Zhong X,Chai Y Q,Chen S H,Yuan R.Chem.Commun.,2016,52(28):5049-5052.
    [82] Oh Y,Noga R,Shanov V,Ryu H,Chandra H,Yadav B,Chae S.Chem.Eng.J.,2019,366:21-26.
    [83] Yang Y D,Gong H Y.Chem.Commun.,2019,55:3701-3704
    [84] Guo F J,Zhang C,Wang Q Y,Hu W J,Cao J,Yao J,Wu Z C.J.Appl.Polym.Sci.,2019,136(20):47493.
    [85] Wu Q,Chen L X,Gao J,Dong S Q,Li H,Di D L,Zhao L.Talanta,2019,194:105-113.
    [86] Liu J,Yu Y,Qi R L,Cao C Y,Liu X Y,Zheng Y J,Song W G.Appl.Catal.B,2019,244:459-464.
    [87] Yang Y X,Qin P G,Zhang J,Li W Q,Zhu J H,Lu M H,Cai Z W.J.Chromatogr.A,2018,1570:47-55.
    [88] Yang Y X,Qin P G,Zhang X T,Niu J H,Tian S F,Lu M H,Cai Z W.Anal.Methods,2018,10(3):322-329.
    [89] Inbaraj D J,Chandran B,Mangalaraj C.Mater.Res.Express,2019,6(5):055501.
    [90] Liu H,Yu D Q,Sun T B,Du H Y,Jiang W T,Muhammad Y,Huang L.Appl.Surf.Sci.,2019,473:855-863.
    [91] Tan L,Yu C F,Wang M,Zhang S Y,Sun J Y,Dong S Y,Sun J H.Appl.Surf.Sci.,2019,467:286-292.
    [92] Pang N N,Wang T L,Cui Y,Hu J Y.Int.J.Environ.Anal.Chem.,2016,96(12):1156-1169.
    [93] Guo S Z,Duan N,Dan Z G,Chen G Y,Shi F F,Gao W B.J.Mol.Liq.,2018,258:225-234.
    [94] Yao H D,Wang X X,Gao J P,Gao C J,Zhao R R,Zhai X G,Qiu H X.Mater.Chem.Phys.,2019,223:648-658.
    [95] Xiao G,Wang Y Q,Xu S N,Li P F,Yang C,Jin Y,Su H J.Chin.J.Chem.Eng.,2019,27(2):305-313.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700