Citation:
CHEN Yu, WANG Jie, LIU Zhong-Ming. Graphene and Its Derivatives-Based Biosensing System[J]. Chinese Journal of Analytical Chemistry,
;2012, 40(11): 1772-1779.
doi:
10.3724/SP.J.1096.2012.20436
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Graphene and its derivatives have recently attracted considerable attention because of their vast array of distinct electronic, thermal, mechanical, optical, and electrochemical properties. Thus, this set of compounds has become a research hotspot and a promising area for scientific research. The significantly high carrier mobility, high electrical conductivity, high surface area, ease of functionalization, strong fluorescence quenching, and affinity for biomolecules make graphene and its derivatives suitable in the development of biosensing systems. In our review, we describe the recent applications of graphene and its derivatives to field-effect transistors as well as to electrochemical, piezoelectric, photoluminescence, and electrochemiluminescence biosensing systems.
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[1]
1 Novoselov K S, Geim A K, Morozov S V, Jiang D, Zhang Y, Dubonos S V, Grigorieva I V, Firsov A A. Science, 2004, 306(5696): 666-669
-
[2]
2 Geim A K. Science, 2009, 324(5934): 1530-1534
-
[3]
3 Zhu Y, Murali S, Cai W, Li X, Suk J W, Potts J R, Ruoff R S. Adv. Mater., 2010, 22(35): 3906-3924
-
[4]
4 Su B, Tang D, Li Q, Tang J, Chen G. Anal. Chim. Acta, 2011, 692(1-2): 116-124
-
[5]
5 Lu L M, Li H B, Qu F, Zhang X B, Shen G L, Yu R Q. Biosens. Bioelectron., 2011, 26(8): 3500-3504
-
[6]
6 Liu Q, Shi J, Cheng M, Li G, Cao D, Jiang G. Chem. Commun., 2012, 48(13): 1874-1876
-
[7]
7 Liu F, Choi J Y, Seo T S. Biosens. Bioelectron., 2010, 25(10): 2361-2365
-
[8]
8 Stankovich S, Dikin D A, Dommett G H B, Kohlhaas K M, Zimney E J, Stach E A, Piner R D, Nguyen S T, Ruoff R S. Chem. Commun., 2006, 442(7100): 282-286
-
[9]
9 Novoselov K S, Jiang Z, Zhang Y, Morozov S V, Stormer H L, Zeitler U, Maan J C, Boebinger G S, Kim P, Geim A K. Science, 2007, 315(5817): 1379
-
[10]
10 Novoselov K S, Geim A K, Morozov S V, Jiang D, Katsnelson M I, Grigorieva I V, Dubonos S V, Firsov A A. Chem. Commun., 2005, 438(7065): 197-200
-
[11]
11 Jung J H, Cheon D S, Liu F, Lee K B, Seo T S. Angew. Chem. Int. Edit., 2010, 49(33): 5708-5711
-
[12]
12 Loh K P, Bao Q, Eda G, Chhowalla M. Nat. Chem., 2010, 2(12): 1015-1024
-
[13]
13 Robinson J T, Perkins F K, Snow E S, Wei Z, Sheehan P E. Nano Lett., 2008, 8(10): 3137-3140
-
[14]
14 Shi Y, Huang W T, Luo H Q, Li N B. Chem. Commun., 2011, 47(16): 4676-4678
-
[15]
15 Ohno Y, Maehashi K, Matsumoto K. Biosens. Bioelectron., 2010, 26(4): 1727-1730
-
[16]
16 Pumera M. Mater. Today, 2011, 14(7-8): 308-315
-
[17]
17 Nagashio K, Nishimura T, Kita K, Toriumi A. Appl. Phys. Express, 2009, 2(2): 025003
-
[18]
18 Shao Y, Wang J, Wu H, Liu J, Aksay I A, Lin Y. Electroanalysis, 2010, 22(10): 1027-1036
-
[19]
19 Geim A K, Novoselov K S. Nat. Mater, 2007, 6(3): 183-191
-
[20]
20 Ohno Y, Maehashi K, Matsumoto K. J. Am. Chem. Soc., 2010, 132(51): 18012-18013
-
[21]
21 Mohanty N, Berry V. Nano Lett., 2008, 8(12): 4469-4476
-
[22]
22 Dong X, Huang W, Chen P. Nanoscale Res. Lett., 2011, 6(1): 60
-
[23]
23 Dong X, Shi Y, Huang W, Chen P, Li L J. Adv. Mater., 2010, 22(14): 1649-1653
-
[24]
24 Mao S, Lu G, Yu K, Bo Z, Chen J. Adv. Mater., 2010, 22(32): 3521-3526
-
[25]
25 Lu G, Ocola L E, Chen J. Appl. Phys. Lett., 2009, 94(8): 083111-083113
-
[26]
26 Lu G, Ocola L E, Chen J. Nanotechnology, 2009, 20(44): 445502
-
[27]
27 Reina A, Jia X, Ho J, Nezich D, Son H, Bulovic V, Dresselhaus M S, Kong J. Nano Lett., 2008, 9(1): 30-35
-
[28]
28 Li X, Cai W, An J, Kim S, Nah J, Yang D, Piner R, Velamakanni A, Jung I, Tutuc E, Banerjee S K, Colombo L, Ruoff R S. Science, 2009, 324(5932): 1312-1314
-
[29]
29 Reina A, Thiele S, Jia X, Bhaviripudi S, Dresselhaus M, Schaefer J, Kong J. Nano Res., 2009, 2(6): 509-516
-
[30]
30 Kim K S, Zhao Y, Jang H, Lee S Y, Kim J M, Kim K S, Ahn J H, Kim P, Choi J Y, Hong B H. Chem. Commun., 2009, 457(7230): 706-710
-
[31]
31 Reina A, Son H, Jiao L, Fan B, Dresselhaus M S, Liu Z, Kong J. J. Phys. Chem. C, 2008, 112(46): 17741-17744
-
[32]
32 Kim S N, Rusling J F, Papadimitrakopoulos F. Adv. Mater., 2007, 19(20): 3214-3228
-
[33]
33 Huang J, Liu Y, You T. Anal. Methods, 2010, 2(3): 202-211
-
[34]
34 Huang Y, Dong X, Shi Y, Li C M, Li L J, Chen P. Nanoscale, 2010, 2(8): 1485-1488
-
[35]
35 Sun Y, Buck H, Mallouk T E. Anal. Chem., 2001, 73(7): 1599-1604
-
[36]
36 Shi W, Ma Z. Biosens. Bioelectron., 2010, 26(3): 1098-1103
-
[37]
37 Haun J B, Yoon T J, Lee H, Weissleder R. Wiley Interdisciplinary Reviews: Nanomedicine and Nanobiotechnology, 2010, 2(3): 291-304
-
[38]
38 Yun Y, Dong Z, Shanov V, Heineman W R, Halsall H B, Bhattacharya A, Conforti L, Narayan R K, Ball W S, Schulz M J. Nano Today, 2007, 2(6): 30-37
-
[39]
39 Pumera M. The Chem. Rec., 2009, 9(4): 211-223
-
[40]
40 Pumera M. Chem. Soc. Rev., 2010, 39(11): 4146-4157
-
[41]
41 Pumera M, Ambrosi A, Bonanni A, Chng E L K, Poh H L. TrAC Trends in Anal. Chem., 2010, 29(9): 954-965
-
[42]
42 Allen M J, Tung V C, Kaner R B. Chem. Rev., 2009, 110(1): 132-145
-
[43]
43 Brownson D A C, Banks C E. Analyst, 2010, 135(11): 2768-2778
-
[44]
44 Lin W J, Liao C S, Jhang J H, Tsai Y C. Electrochem. Commun., 2009, 11(11): 2153-2156
-
[45]
45 Tang L, Wang Y, Li Y, Feng H, Lu J, Li J. Adv. Funct. Mater., 2009, 19(17): 2782-2789
-
[46]
46 Garaj S, Hubbard W, Reina A, Kong J, Branton D, Golovchenko J A. Chem. Commun., 2010, 467(7312): 190-193
-
[47]
47 Shang N G, Papakonstantinou P, McMullan M, Chu M, Stamboulis A, Potenza A, Dhesi S S, Marchetto H. Adv. Funct. Mater., 2008, 18(21): 3506-3514
-
[48]
48 Lim C X, Hoh H Y, Ang P K, Loh K P. Anal. Chem., 2010, 82(17): 7387-7393
-
[49]
49 Zhou M, Zhai Y, Dong S. Anal. Chem., 2009, 81(14): 5603-5613
-
[50]
50 Andreescu S, Luck L A. Anal. Biochem., 2008, 375(2): 282-290
-
[51]
51 Xiao Y, Patolsky F, Katz E, Hainfeld J F, Willner I. Science, 2003, 299(5614): 1877-1881
-
[52]
52 Su B, Tang J, Yang H, Chen G, Huang J, Tang D. Electroanalysis, 2011, 23(4): 832-841
-
[53]
53 Zhu C, Guo S, Zhai Y, Dong S. Langmuir, 2010, 26(10): 7614-7618
-
[54]
54 Dey R S, Raj C R. J. Phys. Chem. C, 2010, 114(49): 21427-21433
-
[55]
55 Hong T K, Lee D W, Choi H J, Shin H S, Kim B S. ACS Nano, 2010, 4(7): 3861-3868
-
[56]
56 Jafri R I, Arockiados T, Rajalakshmi N, Ramaprabhu S. J. The Electrochem. Soc., 2010, 157(6): B874-B879
-
[57]
57 Wang K, Liu Q, Guan Q M, Wu J, Li H N, Yan J J. Biosens. Bioelectron., 2011, 26(5): 2252-2257
-
[58]
58 Wan Y, Wang Y, Wu J, Zhang D. Anal. Chem., 2010, 83(3): 648-653
-
[59]
59 Bo Y, Yang H, Hu Y, Yao T, Huang S. Electrochim. Acta, 2011, 56(6): 2676-2681
-
[60]
60 Wang Y, Li Y, Tang L, Lu J, Li J. Electrochem. Commun., 2009, 11(4): 889-892
-
[61]
61 Xu H, Dai H, Chen G. Talanta, 2010, 81(1-2): 334-338
-
[62]
62 Shan C, Yang H, Han D, Zhang Q, Ivaska A, Niu L. Biosens. Bioelectron., 2010, 25(5): 1070-1074
-
[63]
63 Wu H, Wang J, Kang X, Wang C, Wang D, Liu J, Aksay I A, Lin Y. Talanta, 2009, 80(1): 403-406
-
[64]
64 Wu Z S, Ren W, Gao L, Liu B, Jiang C, Cheng H M. Carbon, 2009, 47(2): 493-499
-
[65]
65 Zhong Z, Wu W, Wang D, Wang D, Shan J, Qing Y, Zhang Z. Biosens. Bioelectron., 2010, 25(10): 2379-2383
-
[66]
66 Feng L, Chen Y, Ren J, Qu X. Biomaterials, 2011, 32(11): 2930-2937
-
[67]
67 Shan C, Yang H, Song J, Han D, Ivaska A, Niu L. Anal. Chem., 2009, 81(6): 2378-2382
-
[68]
68 Hou S, Kasner ML, Su S, Patel K, Cuellari R. J. Phys. Chem. C, 2010, 114(35): 14915-14921
-
[69]
69 Li F, Chai J, Yang H, Han D, Niu L. Talanta, 2010, 81(3): 1063-1068
-
[70]
70 Huang Y, Chen Y S. Sci. China Ser. B: Chem., 2009, 39(9): 887-896
-
[71]
71 Arsat R, Breedon M, Shafiei M, Spizziri P G, Gilje S, Kaner R B, Kalantar-zadeh K, Wlodarski W. Chem. Phys. Lett., 2009, 467(4-6): 344-347
-
[72]
72 Meyer J C, Geim A K, Katsnelson M I, Novoselov K S, Booth T J, Roth S. Chem. Commun., 2007, 446(7131): 60-63
-
[73]
73 Wang X, Ouyang Y, Li X, Wang H, Guo J, Dai H. Phys. Rev. Lett., 2008, 100(20): 206803
-
[74]
74 Son Y W, Cohen M L, Louie S G. Chem. Commun., 2006, 444(7117): 347-349
-
[75]
75 Avouris P, Chen Z, Perebeinos V. Nat. Nano., 2007, 2(10): 605-615
-
[76]
76 Song B, Li D, Qi W, Elstner M, Fan C, Fang H. ChemPhysChem., 2010, 11(3): 585-589
-
[77]
77 Lu C H, Yang H H, Zhu C L, Chen X, Chen G N. Angew. Chem. Int. Edit., 2009, 48(26): 4785-4787
-
[78]
78 Liu C, Wang Z, Jia H, Li Z. Chem. Commun., 2011, 47(16): 4661-4663
-
[79]
79 He S, Song B, Li D, Zhu C, Qi W, Wen Y, Wang L, Song S, Fang H, Fan C. Adv. Funct. Mater., 2010, 20(3): 453-459
-
[80]
80 Zhang M, Yin B C, Tan W, Ye B C. Biosens. Bioelectron., 2011, 26(7): 3260-3265
-
[81]
81 Lu C H, Li J, Liu J J, Yang H H, Chen X, Chen G N. Chemistry-A European Journal, 2010, 16(16): 4889-4894
-
[82]
82 Liu M, Zhang Q, Zhao H, Chen S, Yu H, Zhang Y, Quan X. Chem. Commun., 2011, 47(14): 4084-4086
-
[83]
83 Tang Z, Wu H, Cort J R, Buchko G W, Zhang Y, Shao Y, Aksay I A, Liu J, Lin Y. Small, 2010, 6(11): 1205-1209
-
[84]
84 Guo Y, Jia X, Zhang S. Chem. Commun., 2011, 47(2): 725-727
-
[85]
85 Fan F R, Park S, Zhu Y, Ruoff R S, Bard A J. J. Am. Chem. Soc., 2008, 131(3): 937-939
-
[86]
86 Wang Y, Lu J, Tang L, Chang H, Li J. Anal. Chem., 2009, 81(23): 9710-9715
-
[87]
87 Wang K, Liu Q, Wu X Y, Guan Q M, Li H N. Talanta, 2010, 82(1): 372-376
-
[88]
88 Li H, Chen J, Han S, Niu W, Liu X, Xu G. Talanta, 2009, 79(2): 165-170
-
[89]
89 Chen X, Ye H, Wang W, Qiu B, Lin Z, Chen G. Electroanalysis, 2010, 22(20): 2347-2352
-
[90]
90 Chen G, Zhai S, Zhai Y, Zhang K, Yue Q, Wang L, Zhao J, Wang H, Liu J, Jia J. Biosens. Bioelectron., 2011, 26(7): 3136-3141
-
[91]
91 Gan N, Hou J, Hu F, Cao Y, Li T, Zheng L, Wang J. Int. J. Electrochem. Sci., 2011, 6(11): 5146-5160
-
[92]
92 Li L L, Liu K P, Yang G H, Wang C M, Zhang J R, Zhu J J. Adv. Funct. Mater., 2011, 21(5): 869-878
-
[93]
93 Kim Y T, Han J H, Hong B H, Kwon Y U. Adv. Mater., 2010, 22(4): 515-518
-
[94]
94 Wang T, Zhang S, Mao C, Song J, Niu H, Jin B, Tian Y. Biosens. Bioelectron., 2012, 31(1): 369-375
-
[95]
95 Cao A, Liu Z, Chu S, Wu M, Ye Z, Cai Z, Chang Y, Wang S, Gong Q, Liu Y. Adv. Mater., 2010, 22(1): 103-106
-
[96]
96 Geng X, Niu L, Xing Z, Song R, Liu G, Sun M, Cheng G, Zhong H, Liu Z, Zhang Z, Sun L, Xu H, Lu L, Liu L. Adv. Mater., 2010, 22(5): 638-642
-
[97]
97 Zhou M, Wang Y, Zhai Y, Zhai J, Ren W, Wang F, Dong S. Chemistry-A European Journal, 2009, 15(25): 6116-6120
-
[98]
98 Deng S, Lei J, Cheng L, Zhang Y, Ju H. Biosens. Bioelectron., 2011, 26(11): 4552-4558
-
[99]
99 Yuan Y, Li H, Han S, Hu L, Parveen S, Cai H, Xu G. Anal. Chem. Acta, 2012, 720: 38-42
-
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