[1] |
COLEMAN J N, LOTYA M, O'NEILL A, et al. Two-dimensional nanosheets produced by liquid exfoliation of layered materials[J]. Science, 2011, 331(6017):568-571.
|
[2] |
CHOWALLA M, SHIN H S, EDA G, et al. The chemistry of two-dimensional layered transition metal dichalcogenide nanosheets[J]. Nature Chemistry, 2013, 5(4):263-275.
|
[3] |
ZHU C, ZENG Z, LI H, et al. Single-Layer MoS2 based nanoprobes for homogeneous detection of biomolecules[J]. Journal of the American Chemical Society, 2013, 135(16):5998-6001.
|
[4] |
ZENG Z, YIN Z, HUANG X, et al. Single-layer semiconducting nanosheets:High-yield preparation and device fabrication[J]. Angewandte Chemie International Edition, 2011, 50(47):11093-11097.
|
[5] |
HUANG J, WEI D, ZHENG P, et al. MoS2 nanosheet functionalized with Cu nanoparticles and its application for glucose detection[J]. Materials Research Bulletin, 2013, 48(11):4544-4547.
|
[6] |
罗世忠,赵金龙,陈怀银, 等. 薄层二硫化钼-自掺杂聚苯胺纳米复合材料高灵敏检测Pb2+[J]. 分析测试学报, 2016, 35(1):23-27.
LUO S Z, ZHAO J L,CHEN H Y,et al. High sensitive detection of Pb2+ using thin-layered molybdenum disulfide-self-doped polyaniline nanocomposite[J]. Journal of Instrumental Analysis, 2016, 35(1):23-27(in Chinese).
|
[7] |
|
[8] |
赵得瑞, 翟英娇, 李金华, 等. 基于花状MoS2微米材料的葡萄糖生物传感器的制备及其性能研究[J]. 无机材料学报, 2016, 31(2):153-158.
ZHAO D R, ZHAI Y J, LI J H, et al. Preparation and properties of glucose biosensor based on flower-like MoS2 micrometer material[J]. Journal of Inorganic Materials 2016, 31(2):153-158(in Chinese).
|
[9] |
CHANG K, CHEN W. L-cysteine-assisted synthesis of layered MoS2/Graphene composites with excellent electrochemical performances for lithium ion batteries[J]. ACS Nano, 2011, 5(6):4720-4728.
|
[10] |
MOSES P G, MORTENSEN J J, LUNDQVIST B I, et al. Density functional study of the adsorption and van der Waals binding of aromatic and conjugated compounds on the basal plane of MoS2[J]. The Journal of Chemical Physics, 2009, 130(10):104709.
|
[11] |
XIANG X, SHI J B, HUANG F H, et al. MoS2 nanosheet-based fluorescent biosensor for protein detection via terminal protection of small-molecule-linked DNA and exonuclease Ⅲ-aided DNA recycling amplification[J]. Biosensors and Bioelectronics, 2015, 74:227-232.
|
[12] |
WANG H, KIM Y, LIU H, et al. Engineering a unimolecular DNA-catalytic probe for single lead ion monitoring[J]. Journal of the American Chemical Society, 2009, 131(23):8221-8226.
|
[13] |
李玄, 王锐, 尹大强. 饮用水汞暴露对小鼠免疫系统的毒性[J]. 环境化学,2014, 33(9):1427-1432.
LI X, WANG R, YIN D Q. Immunotoxic effects of mercury exposure via drinking water[J]. Environmental Chemisry, 2014,33(9):1427-1432(in Chinese).
|
[14] |
JITARU P, TIREZ K, BRUCKER N D. Panoramic analysis for monitoring trace metals in natural waters by ICP-MS[J]. Atomic Spectroscopy, 2003, 24(1):1-10.
|
[15] |
LI H, ZHAI J, TIAN J, et al. Carbon nanoparticle for highly sensitive and selective fluorescent detection of mercury (Ⅱ) ion in aqueous solution[J]. Biosensors and Bioelectronics, 2011, 26(11):4656-4660.
|
[16] |
CIZDZIEL J V, GERSTENBERGER S. Determination of total mercury in human hair and animal fur by combustion atomic absorption spectrometry[J]. Talanta, 2004, 64(4):918-921.
|
[17] |
MIYAKEY, TOGASHI H, TASHIRO M, et al. Mercury (Ⅱ)-mediated formation of thymine-Hg(Ⅱ)-thymine base pairs in DNA duplexes[J]. Journal of the American Chemical Society, 2006, 128(7):2172-2173.
|
[18] |
陈慧甜,孙清,时国庆.核酸适配体在环境分析中的应用[J]. 环境化学,2015, 34(1):89-96.
CHEN H T, SUN Q, SHI G Q. Application of aptamers to environmental analysis[J]. Environmental Chemisry, 2015, 34(1):89-96(in Chinese).
|
[19] |
ONO A, TOGASHI H. Highly selective oligonucleotide-based sensor for mercury(Ⅱ) in aqueous solutions[J]. Angewandte Chemie International Edition, 2004, 43(33):4300-4302.
|
[20] |
LI M, WANG Q Y, SHI X D, et al. Detection of mercury(Ⅱ) by quantum dot/DNA/gold nanoparticle ensemble based nanosensor via nanometal surfaceenergy transfer[J]. Analytical Chemistry, 2011, 83(18):7061-7065.
|
[21] |
HE S, SONG B, LI D, et al. A graphene nanoprobe for rapid, sensitive, and multicolor fluorescent DNA analysis[J]. Advanced Functional Materials, 2010, 20(3):453-459.
|
[22] |
WANG S, SI S. Aptamer biosensing platform based on carbon nanotube long-range energy transfer for sensitive, selective and multicolor fluorescent heavy metal ion analysis[J]. Analytical Methods, 2013, 5:2947-2953
|
[23] |
ZHANG L, LI T, LI B, et al. Carbon nanotube-DNA hybrid fluorescent sensor for sensitive and selective detection of mercury(Ⅱ) ion[J]. Chemical Communications, 2010, 46(9):1476-1478.
|
[24] |
曾利红, 何婧琳, 王君霞, 等. 基于单壁碳纳米管的荧光核酸适体传感器对汞离子的检测[J]. 化学传感器, 2013, 33(2):18-22.
ZENG L H, HE J L, WANG J X, et al. SWNTs based fluorescent aptamer sensors for mercury ion detection[J]. Chemical Sensors, 2013, 33(2):18-22(in Chinese).
|
[25] |
LI H, ZHAI J, TIAN J, et al. Carbon nanoparticle for highly sensitive and selective fluorescent detection of mercury(Ⅱ) ion in aqueous solution[J]. Biosensors and Bioelectronics, 2011, 26(12):4656-4660.
|
[26] |
刘萍, 邓承雨, 金振国, 等. 无标记增强型检测Hg2+的荧光DNA传感器[J]. 分析实验室, 2013, 32(5):61-64.
LIU P, DENG C Y, QUAN Z G, et al. A label-free enhanced fluorescence DNA biosensor for Hg2+ detection[J]. Chinese Journal of Analysis Laboratory, 2013, 32(5):61-64(in Chinese).
|
[27] |
ZHAN S, XU H, ZHANG D, et al. Fluorescent detection of Hg2+ and Pb2+ using GeneFinderTM and an Integrated functional nucleic acid[J]. Biosensors and Bioelectronics, 2015, 72:95-99.
|
[28] |
薄红艳, 黄绍峰, 曾文静, 等. 基于Hg2+诱导DNA双链形成的荧光增强法检测Hg2+[J]. 分析化学, 2011, 29(12):1893-1897.
BO H Y, HUANG S F, ZENG W J, et al. Fluorescence detection of Hg2+ Based on Hg2+ induced formation of dsDNA[J]. Chinese Journal of Analytical Chemistry, 2011, 29(12):1893-1897(in Chinese).
|
[29] |
Xi Q, Zhou, D M, Kan Y Y, et al. Highly sensitive and selective strategy for microRNA detection based on WS2 nanosheet mediated fluorescence quenching and duplex-specificnuclease signal amplification[J]. Analytical Chemistry, 2014, 86:1361-1365.
|
[30] |
MAO X, XU Y, XUE Q, et al. Ferromagnetism in exfoliated tungsten disulfide nanosheets[J]. Nanoscale Research Letters, 2013, 8(1):1-6.
|
[31] |
WANG X, NAN F, ZHAO J, et al. A label-free ultrasensitive electrochemical DNA sensor based on thin-layer MoS2 nanosheets with high electrochemical activity[J]. Biosensors and Bioelectronics, 2015, 64:386-391.
|
[32] |
BIAN L, JI X, HU W. A novel single-labeled fluorescent oligonucleotide probe for silver(Ⅰ) ion detection in water, drugs, and food[J]. Journal of Agricultural and Food Chemistry, 2014, 62(21):4870-4877.
|
[33] |
ZHANG X, LI Y, SU H, et al. Highly sensitive and selective detection of Hg2+using mismatched DNA and a molecular light switch complex in aqueous solution[J]. Biosensors and Bioelectronics, 2010, 25(6):1338-1343.
|