ZENG Hui-hui, XIAO Mei-zhen, YAN Gen-ping etc. Synthesis of Tin Oxide Quantum Dots-based Fluorescence Probe for AA Sensitive Detection[J]. Chinese Journal of Luminescence, 2019,40(12): 1554-1562
ZENG Hui-hui, XIAO Mei-zhen, YAN Gen-ping etc. Synthesis of Tin Oxide Quantum Dots-based Fluorescence Probe for AA Sensitive Detection[J]. Chinese Journal of Luminescence, 2019,40(12): 1554-1562 DOI: 10.3788/fgxb20194012.1554.
Synthesis of Tin Oxide Quantum Dots-based Fluorescence Probe for AA Sensitive Detection
quantum dots by the means of hydrothermal method in this paper. The synthesis conditions such as pH
temperature
as well as time were optimized
and the FT-IR
XRD
Malvern Zetasizer Nano ZS90
FL-4600 fluorescence spectrophotometer
etc
. were utilized for the physicochemical and optical properties characterization of SnO
2
quantum dots. The experimental result shows that the size of SnO
2
quantum dots is about 5 nm
when excited with 310 nm light
the maximum emission peak of SnO
2
quantum dots locats at 415 nm. In the presence of Fe
3+
the fluorescence of SnO
2
quantum dots is quenched
while the Fe
2+
has no affection on the fluorescence of SnO
2
. Utilizing the reduction of ascorbic acid (AA)
the Fe
3+
ions can be reduced to Fe
2+
resulting in the fluorescence restore efficiently. When the concentration of AA is 500 molL
-1
the fluorescence recovery can reach to 95.88%. Based on this
we constructed a novel off-on fluorescence probe based on SnO
2
quantum dots for the sensitive detection of AA.
关键词
Keywords
references
KAUR M,GUPTA S K,BETTY C A,et al.. Detection of reducing gases by SnO2 thin films:an impedance spectroscopy study[J]. Sens. Actuators B, 2005,107(1):360-365.
WANG Y L,JIANG X C,XIA Y N. A solution-phase,precursor route to polycrystalline SnO2 nanowires that can be used for gas sensing under ambient conditions[J]. J. Am. Chem. Soc., 2003,125(52):16176-16177.
VUONG D D,SAKAI G,SHIMANOE K,et al.. Hydrogen sulfide gas sensing properties of thin films derived from SnO2 sols different in grain size[J]. Sens. Actuators B, 2005,105(2):437-442.
CHIU H C,YEH C S. Hydrothermal synthesis of SnO2 nanoparticles and their gas-sensing of alcohol[J]. J. Phys. Chem. C, 2007,111(20):7256-7259.
MA X C,SONG H Y,GUAN C S. Interfacial oxidation-dehydration induced formation of porous SnO2 hollow nanospheres and their gas sensing properties[J]. Sens. Actuators B, 2013,177:196-204.
SUNG J H,LEE Y S,LIM J W,et al..Sensing characteristics of tin dioxide/gold sensor prepared by coprecipitation method[J]. Sens. Actuators B, 2000,66(1-3):149-152.
DONG H F,LEI J P,JU H X,et al.. Target-cell-specific delivery,imaging,and detection of intracellular micro RNA with a multifunctional SnO2 nanoprobe[J]. Angew. Chem. Int. Ed., 2012,51(19):4607-4612.
ZHANG Y L,LI L P,ZHENG J,et al.. Two-step grain-growth kinetics of sub-7 nm SnO2 nanocrystal under hydrothermal condition[J]. J. Phys. Chem. C, 2015,119(33):19505-19512.
陆梦晨. SPS制备SnO2和ZnS:Mn量子点玻璃及其光学性能的研究[D]. 上海:东华大学, 2016. LU M C. Synthesis of SnO2 and ZnS:Mn Quantum Dots Embedded in Silica Glass via SPS and Its Optical Properties Research[D]. Shanghai:Donghua University, 2016. (in Chinese)
SONG Z L,WEI Z R,WANG B C,et al.. Sensitive room-temperature H2S gas sensors employing SnO2quantum wire/reduced graphene oxide nanocomposites[J]. Chem. Mater., 2016,28(4):1205-1212.
LIN Y B,LIN Y,MENG Y M,et al.. CdS/CdSe co-sensitized SnO2 photoelectrodes for quantum dots sensitized solar cells[J]. Opt. Commun., 2015,346(1):64-68.
JIA J B,WANG B Q,WU A G,et al.. A method to construct a third-generation horseradish peroxidase biosensor:self-assembling gold nanoparticles to three-dimensional sol-gel network[J]. Anal. Chem., 2002,74(9):2217-2223.
YIN R C,MAO S Q,ZHAO B L,et al.. Ascorbic acid enhances tet-mediated 5-methylcytosine oxidation and promotes DNA demethylation in mammals[J]. J. Am. Chem. Soc., 2013,135(28):10396-10403.
AZIZ N,FARAZ M,PANDEY R,et al.. Facile algae-derived route to biogenic silver nanoparticles:synthesis,antibacterial,and photocatalytic properties[J]. Langmuir, 2015,31(42):11605-11612.
SHAKYA R,NAVARRED A. Rapid screening of ascorbic acid,glycoalkaloids,and phenolics in potato using high-performance liquid chromatography[J]. J. Agric. Food Chem., 2006,54(15):5253-5260.
RONG M C,LIN L P,SONG X H,et al.. Fluorescence sensing of chromium (Ⅵ) and ascorbic acid using graphitic carbon nitride nanosheets as a fluorescent "switch"[J]. Biosens. Bioelectron., 2015,68:210-217.
WANG X X,WU P,HOU X D,et al.. An ascorbic acid sensor based on protein-modified Au nanoclusters[J]. Analyst, 2013,138(1):229-233.
CHEN Y J,YAN X P. Chemical redox modulation of the surface chemistry of CdTe quantum dots for probing ascorbic acid in biological fluids[J]. Small, 2009,5(17):2012-2018.
LI N,LI Y H,HAN Y Y,et al.. A highly selective and instantaneous nanoprobe for detection and imaging of ascorbic acid in living cells and in vivo[J]. Anal. Chem., 2014,86(8):3924-3930.
ZHAI W Y,WANG C X,YU P,et al.. Single-layer MnO2nanosheetssuppressed fluorescence of 7-hydroxycoumarin:mechanistic study and application for sensitive sensing of ascorbic acid in vivo[J]. Anal. Chem., 2014,86(24):12206-12213.
ZHU X H,ZHAO T B,NIE Z,et al.. Non-redox modulated fluorescence strategy for sensitive and selective ascorbic acid detection with highly photoluminescent nitrogen-doped carbon nanoparticles via solid-state synthesis[J]. Anal. Chem., 2015,87(16):8524-8530.
HORTIA N C,KAMATAGIA M D,PATILB N R,et al.. Photoluminescence properties of SnO2 nanoparticles:effect of solvents[J]. Optik, 2018,169:314-320.
PATTERSON A L. The scherrer formula for X-ray particle size determination[J]. Phys. Rev., 1939,56(10):978-982.
潘书生. 氮掺杂SnO2薄膜生长与物性研究[D]. 合肥:中国科学院合肥物质科学研究院, 2007. PAN S S. Growth and Physical Properties of Nitrogen-doped SnO2 Thin Films[D]. Hefei:Hefei Institute of Physical Science,Chinese Academy of Sciences, 2007. (in Chinese)
HU Y,HEOC H,KIM G,et al.. One-photon and two-photon sensing of biothiols using a bis-pyrene-Cu(Ⅱ) ensemble and its application to image GSH in the cells and tissues[J]. Anal. Chem., 2015,87(6):3308-3313.
PATHAKR K,HINGEV K,MAHESH K,et al.. Cd2+ complex of atriazole-based calixarene conjugate as a selective fluorescent chemosensorforcys[J]. Anal. Chem., 2012,84(15):6907-6913.
ZENG H H,WU H,PENG D,et al.. Fast and selective detection of Cr(Ⅲ) in environmental water samples using phosphovanadate Y(V0.2P0.8O4):Eu3+ fluorescence nanorods[J]. ACS Sens., 2018,3(8):1569-1575.
ANANTHANARAYANAN A,WANG X W,ROUTH P,et al.. Facile synthesis of graphene quantum dots from 3D graphene and their application for Fe3+sensing[J]. Adv. Funct. Mater., 2014,24(20):3021-3026.
MEI Q S,JIANG C L,GUAN G J,et al.. Fluorescent graphene oxide logic gates for discrimination of iron (3+) and iron (2+) in living cells by imaging[J]. Chem. Commun., 2012,48(60):7468-7470.
YANG F C,XIE Q J,ZHANG H Z,et al.. Simultaneous determination of ascorbic acid,uric acid,tryptophan and adenine using carbon-supported NiCoO2 nanoparticles[J]. Sens. Actuators B, 2015,210:232-240.
ZOU H L,LI B L,LUO H Q,et al.. A novel electrochemical biosensor based on hemin functionalized graphene oxide sheets for simultaneous determination of ascorbic acid,dopamine and uric acid[J]. Sens. Actuators B, 2015,207:535-541.
ZHAO P,HE K Y,HAN Y T,et al.. Near-infrared dual-emission quantum dots-gold nanoclustersnanohybrid via Co-template synthesis for ratiometric fluorescent detection and bioimaging of ascorbic acid in vitro and in vivo[J]. Anal. Chem., 2015,87(19):9998-10005.
MENG H M,ZHANG X B,YANG C,et al.. Efficient two-photon fluorescence nanoprobe for turn-on detection and imaging of ascorbic acid in living cells and tissues[J]. Anal. Chem., 2016,88(11):6057-6063.
NIU W J,SHAN D,ZHU R H,et al.. Dumbbell-shaped carbon quantum dots/AuNCs nanohybrid as an efficient ratiometric fluorescent probe for sensing cadmium (Ⅱ) ions and L-ascorbic acid[J]. Carbon, 2016,96:1034-1042.
ROE J H,OESTERLING M J. The determination of dehydroascorbic acid and ascorbic acid in plant tissues by the 2,4-dinitrophenyl hydrazine method[J]. J. Biol. Chem.,1944,152(3):511-517.