参考文献

1.徐东群.居住环境空气污染与健康[M].北京:化学工业出版社,2005:198-243.
2.Huda R.Algaim,Rifat M.Dakhil and Isa J.Al-Khalifa.Determination of Radon and Thoron Activity in the Soil By using Solid State Nuclear Track Detectors(SSNTDs),Passive Technique[J].Advances in Applied Science Research,2012,3(2):950-961.
3.Nan Du,Lifu Liao,Yongjun Xiao,et al.Determination of radon using solid state nuclear tracks wireless sensing method[J].Analytica Chimica Acta,2011,686:121-125.
4.韩芹芹.固体径迹探测器与RAD-7测氡仪测定民用建筑工程室内氡浓度的比较[J].环境科学与管理,2012,37(3):122-126.
5.Yaotsung Chen,Chihjen Lu.Effects of tetrachloroethene on the measurement of radon in water with liquid scintillation counting method[J].Journal of Environmental Radioactivity,2014,127:26-33.
6.F.Lamonaca,V.Nastro,A.Nastro,D.Grimaldi,Monitoring of indoor radon pollution,Measurement,Volume 47,January 2014,Pages 228-233.
7.Mohammad Reza Rezaie,Mehdi Sohrabi,Ali Negarestani,Studying the response of CR-39 to radon in nonpolar liquids above water by Monte Carlo simulation and measurement,Radiation Measurements,2013,50:103-108.
8.R.C.Ramola,B.S.Rautela,G.S.Gusain,et al.Tokonami,Measurements of radon and thoron concentrations in high radiation background area using pin-hole dosimeter,Radiation Measurements,Volumes 53-54,June-July 2013,Pages 71-73,
9.Nan Du,Lifu Liao,Yongjun Xiao,et al.Determi-nation of radon using solid state nuclear tracks wireless sensing method.Analy-tica Chimica Acta,2011,686:121-125.
10.Caresana,M.,M.Ferrarini,L.Garlati,A.Parravicini.About ageing and fading of Cr-39 PADC track detectors used as air radon concentration measurement devices.Radiation Measurements,2010.45(2):183-189.
11.Fairchild,R.,L.Tjong,T.Wright.Automating radon solid state track detector measurements.Radiation Measurements,2011.46(12):1773-1777.
12.Caresana,M.,M.Ferrarini,L.Garlati,A.Parravicini.Further studies on ageing and fading of CR39 PADC track detectors used as air radon concentration measurement devices.Radiation Measurements,2011.46(10):1160-1167.
13.Brown,J.M.C.,S.Solomon,R.A.Tinker.Development of an energy discriminate CR-39 ®nuclear track etch dosimeter for Radon-220 gas measurements.Journal of Environmental Radioactivity,2011.102(10):901-905.
14.Paschalides,J.S.,G.S.Marinakis,N.P.Petropoulos.Passive,integrated measurement of radon using 5A synthetic zeolite and blue silica gel.Applied Radiation and Isotopes,2010.68(1):155-163.
15.Zafrir,H.,S.M.Barbosa,U.Malik.Differentiation between the effect of temperature and pressure on radon within the subsurface geological media.Radiation Measurements,2013.49(0):39-56.
16.Rau,W.Measurement of radon diffusion in polyethylene based on alpha detection.Nuclear Instruments and Methods in Physics Research Section A:Accelerators,Spectrometers,Detectors and Associated Equipment,2012.664(1):65-70.
17.Hou X.Roos P.Critical comparison of radiometric and mass spectrometric methods for the determination of radionuclides in environmental,biological and nuclear waste samples.Anal.Chin.Acta.2008,608:105-139.
18.Martin-Martin A,Gutierrez-Villanueva JL,Munoz JM,Garcia-Talavera M,Adaniec G,Iniguez MP.Radon measurements with aPIN photodiode.Appl.Rddiat.Isotopes,2006,64(10-11):1287-1290.
19.Lee J,Kim G.A simple and rapid method for analyzing radon in coastal and ground waters using a radon-inair monitor.J.Environ.Radicactiv,2006,89(3):219-228.
20.L.Q.Guo,D.D.Nie,C.Y.Qiu,Q.S.Zheng,et al,A G-quadruplex based label-free fluorescent biosensor for lead ion.Biosens.Bioelectron.35(2012)123-127.
21.Shenshan Zhan,Yuangen Wu,Yanfang Luo,et al.Label-free fluorescent sensor for lead ions detection based on lead(II)-stabilized G-quadruplex formation.Analytical Biochemistry,2014,462:19-25.
22.Zhai W.,Du C.,Li X.A series of logic gates based on electrochemical reduction of Pb 2+in self-assembled G-quadruplex on the gold electrode[J].Chemical Communications,2014,50(17):2093-2095.
23.Wang Y.,Wang J.,Yang F.,et al.Spectrophotometric detection of lead(II)ion using unimolecular peroxidase-like deoxyribozyme[J].Microchimica Acta,2010,171(1-2):195-201.
24.Huang C.-C.,Chang H.-T.Aptamer-based fluorescence sensor for rapid detection of potassium ions in urine[J].Chemical Communications,2008,12):1461-1463.
25.Liu C.-W.,Huang C.-C.,Chang H.-T.Control over surface DNA density on gold nanoparticles allows selective and sensitive detection of mercury(II)[J].Langmuir,2008,24(15):8346-8350.
26.Chiang C.-K.,Huang C.-C.,Liu C.-W.,et al.Oligonucleotide-based fluorescence probe for sensitive and selective detection of mercury(II)in aqueous solution[J].Analytical chemistry,2008,80(10):3716-3721.
27.Shimo M.,Saito H.Size distribution of radon progeny aerosols in indoor and outdoor air[J].Journal of environmental radioactivity,2000,51(1):49-57.
28.马晓.放射性气溶胶取样滤膜性能研究[D];衡阳:南华大学,2012.
29.马晓,唐泉,刘永辉,等.滤膜对α-放射性气溶胶取样性能研究[J].核电子学与探测技术,2012,32(1):116-119.
30.Rurack K.Flipping the light switch‘ON’-the design of sensor molecules that show cation-induced fluorescence enhancement with heavy and transition metal ions[J].Spectrochimica Acta Part A:Molecular and Biomolecular Spectroscopy,2001,57(11):2161-2195.
31.Burge S.,Parkinson G.N.,Hazel P.,et al.Quadruplex DNA:sequence,topology and structure[J].Nucleic acids research,2006,34(19):5402-15.
32.Zhang D.,Yin L.,Meng Z.,et al.A sensitive fluorescence anisotropy method for detection of lead(II)ion by a G-quadruplex-inducible DNA aptamer[J].Analytica chimica acta,2014,812(1):61-67.
33.Nagatoishi S.,Tanaka Y.,Tsumoto K.Circular dichroism spectra demonstrate formation of the thrombinbinding DNA aptamer G-quadruplex under stabilizing-cation-deficient conditions[J].Biochemical and biophysical research communications,2007,352(3):812-817.
34.Smirnov I.V.,Kotch F.W.,Pickering I.J.,et al.Pb EXAFS studies on DNA quadruplexes:identification of metal ion binding site[J].Biochemistry,2002,41(40):12133-12139.
35.Smirnov I.,Shafer R.H.Lead is unusually effective in sequence-specific folding of DNA[J].Journal of molecular biology,2000,296(1):1-5.
36.Ren iuk D.,Kejnovská I.,Školáková P.,et al.Arrangements of human telomere DNA quadruplex in physiologically relevant K+solutions[J].Nucleic acids research,2009,gkp701.
37.Sun H.,Li X.,Li Y.,et al.A novel colorimetric potassium sensor based on the substitution of lead from G-quadruplex[J].Analyst,2013,138(3):856-862.
38.Zhou Z.,Dong S.Protein-DNA interactions:a novel approach to improve the fluorescence stability of DNA/Ag nanoclusters[J].Nanoscale,2015,7(4):1296-300.
39.Li Z.,Ni Y.,Kokot S.A new fluorescent nitrogen-doped carbon dot system modified by the fluorophore-labeled ssDNA for the analysis of 6-mercaptopurine and Hg(II)[J].Biosensors and Bioelectronics,2015,74(9):1-7.
40.Liu C.-W.,Huang C.-C.,Chang H.-T.Highly selective DNA-based sensor for lead(II)and mercury(II)ions[J].Analytical chemistry,2009,81(6):2383-2387.
41.Li B.,Dong S.,Wang E.FOCUS REVIEWS[J].Chem Asian J,2010,5(1):262-272.

(龙敏芝 吕昌银)