Voltammetric simultaneous ion flux measurements platform for Cu 2+ , Pb 2+ and Hg 2+ near rice root surface: Utilizing carbon nitride heterojunction film modified carbon fiber microelectrode
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[1] Anamika Das,et al. Bioremoval of lead using Pennisetum purpureum augmented with Enterobacter cloacae-VITPASJ1: A pot culture approach , 2017, Environmental Science and Pollution Research.
[2] Mingyin Yao,et al. Detection of heavy metal Cd in polluted fresh leafy vegetables by laser-induced breakdown spectroscopy. , 2017, Applied optics.
[3] W. Peijnenburg,et al. Determining the fluxes of ions (Pb2+, Cu2+ and Cd2+) at the root surface of wetland plants using the scanning ion-selective electrode technique , 2017, Plant and Soil.
[4] Hongying Lv,et al. Ultra-high sensitive voltammetric sensor modified by largely oxygenous functionalized ultrathin carbon nitride nanosheets for detection of Cu (II) , 2017 .
[5] Hongying Lv,et al. Bandgap engineering of ultrathin graphene-like carbon nitride nanosheets with controllable oxygenous functionalization , 2017 .
[6] Kun Wang,et al. Graphitic carbon nitride quantum dots in situ coupling to Bi2MoO6 nanohybrids with enhanced charge transfer performance and photoelectrochemical detection of copper ion , 2017 .
[7] M. Korolczuk,et al. Sensitive Anodic Stripping Voltammetric Determination of Indium(III) Traces Following Double Deposition and Stripping Steps , 2017 .
[8] Nimisha Jadon,et al. Author ’ s Accepted Manuscript Recent Trends in Electrochemical Sensors for Multianalyte Detection – A Review , 2016 .
[9] Songmei Wu,et al. Highly sensitive and selective detection of cadmium with a graphite carbon nitride nanosheets/Nafion electrode , 2016 .
[10] Hongying Lv,et al. Voltammetric Sensor Modified by EDTA-immobilized Graphene-like Carbon Nitride Nanosheets: Preparation, Characterization and Selective Determination of Ultra-Trace Pb (II) in Water Samples , 2016 .
[11] Yuanyuan Yang,et al. Real-Time, Selective Detection of Copper(II) Using Ionophore-Grafted Carbon-Fiber Microelectrodes. , 2016, Analytical chemistry.
[12] Xinrong Guo,et al. Preparation of protonated, two-dimensional graphitic carbon nitride nanosheets by exfoliation, and their application as a fluorescent probe for trace analysis of copper(II) , 2016, Microchimica Acta.
[13] Y. Long,et al. A Sensitive Sensor for trace Hg2+ Determination Based on Ultrathin g-C3N4 Modified Glassy Carbon Electrode , 2015 .
[14] U. Farooq,et al. Electrochemical determination of inorganic mercury and arsenic--A review. , 2015, Biosensors & bioelectronics.
[15] Cheng Yang,et al. Carbon Nanotubes Grown on Metal Microelectrodes for the Detection of Dopamine , 2015, Analytical chemistry.
[16] Xinchen Wang,et al. Two-dimensional covalent carbon nitride nanosheets: synthesis, functionalization, and applications , 2015 .
[17] Ying Li,et al. Potential-Modulated Electrochemiluminescence of Carbon Nitride Nanosheets for Dual-Signal Sensing of Metal Ions. , 2015, ACS applied materials & interfaces.
[18] S. Ozkan,et al. Electroanalysis in Biomedical and Pharmaceutical Sciences: Voltammetry, Amperometry, Biosensors, Applications , 2015 .
[19] Anthony J Walton,et al. Enhanced electroanalysis in lithium potassium eutectic (LKE) using microfabricated square microelectrodes. , 2014, Analytical chemistry.
[20] Yu Wang,et al. Graphitic carbon nitride solid nanofilms for selective and recyclable sensing of Cu2+ and Ag+ in water and serum. , 2014, Chemical communications.
[21] Jianghua Li,et al. Origin of the enhanced visible-light photocatalytic activity of CNT modified g-C3N4 for H2 production. , 2014, Physical chemistry chemical physics : PCCP.
[22] Jiaxing Li,et al. Polymer nanodots of graphitic carbon nitride as effective fluorescent probes for the detection of Fe³⁺ and Cu²⁺ ions. , 2014, Nanoscale.
[23] Xiaojun Chen,et al. Target-induced electronic switch for ultrasensitive detection of Pb2+ based on three dimensionally ordered macroporous Au-Pd bimetallic electrode. , 2014, Biosensors & bioelectronics.
[24] Li Xu,et al. Exfoliated graphene-like carbon nitride in organic solvents: enhanced photocatalytic activity and highly selective and sensitive sensor for the detection of trace amounts of Cu2+ , 2014 .
[25] Wei‐De Zhang,et al. A carbon nitride electrode for highly selective and sensitive determination of lead(II) , 2013, Microchimica Acta.
[26] Qian Liu,et al. Ultrathin graphitic carbon nitride nanosheet: a highly efficient fluorosensor for rapid, ultrasensitive detection of Cu(2+). , 2013, Analytical chemistry.
[27] Hua-ming Li,et al. The CNT modified white C3N4 composite photocatalyst with enhanced visible-light response photoactivity. , 2013, Dalton transactions.
[28] Bradford D Pendley,et al. A tutorial on the application of ion-selective electrode potentiometry: an analytical method with unique qualities, unexplored opportunities and potential pitfalls; tutorial. , 2013, Analytica chimica acta.
[29] S. Barman,et al. Bottom-up fabrication of two-dimensional carbon nitride and highly sensitive electrochemical sensors for mercuric ions , 2013 .
[30] S. Ogale,et al. Doubling of photocatalytic H2 evolution from g-C3N4 via its nanocomposite formation with multiwall carbon nanotubes: Electronic and morphological effects , 2012 .
[31] Martin M. F. Choi,et al. Electrogenerated chemiluminescence behavior of graphite-like carbon nitride and its application in selective sensing Cu2+. , 2012, Analytical chemistry.
[32] Arne Thomas,et al. Cubic mesoporous graphitic carbon(IV) nitride: an all-in-one chemosensor for selective optical sensing of metal ions. , 2010, Angewandte Chemie.
[33] Howard W. Mielke,et al. Lead (Pb) legacy from vehicle traffic in eight California urbanized areas: continuing influence of lead dust on children's health. , 2010, The Science of the total environment.
[34] H. Cachet,et al. Amorphous carbon nitride a-CNx microelectrode: Fabrication and characterization , 2010 .
[35] Hefa Cheng,et al. Lead (Pb) isotopic fingerprinting and its applications in lead pollution studies in China: a review. , 2010, Environmental pollution.
[36] Mehmet Aslanoglu,et al. Voltammetric selectivity conferred by the modification of electrodes using conductive porous layers or films: The oxidation of dopamine on glassy carbon electrodes modified with multiwalled carbon nanotubes , 2010 .
[37] E. McLamore,et al. Non‐invasive self‐referencing electrochemical sensors for quantifying real‐time biofilm analyte flux , 2009, Biotechnology and bioengineering.
[38] P. Rai. Heavy Metal Pollution in Aquatic Ecosystems and its Phytoremediation using Wetland Plants: An ecosustainable approach , 2008, International journal of phytoremediation.
[39] S. Tong,et al. Non-invasive scanning ion-selective electrode technique and its applications to the research of higher plants , 2007 .
[40] Ivan Hotovy,et al. Bismuth film electrodes for heavy metals determination , 2007, SPIE Microtechnologies.
[41] Ø. Mikkelsen,et al. Electrochemical properties of silver–copper alloy microelectrodes for use in voltammetric field apparatus , 2006, Analytical and bioanalytical chemistry.
[42] Xiaoya Hu,et al. Fabrication of nanometre-sized platinum electrodes by controllable electrochemical deposition. , 2006, Talanta.
[43] Stefano Mancuso,et al. Noninvasive and continuous recordings of auxin fluxes in intact root apex with a carbon nanotube-modified and self-referencing microelectrode. , 2005, Analytical biochemistry.
[44] Manfred Paeschke,et al. Chip-array electrodes for simultaneous stripping analysis of trace metals , 1995 .
[45] Jianmin Zhao,et al. Pathways of cadmium fluxes in the root of the halophyte Suaeda salsa. , 2012, Ecotoxicology and environmental safety.
[46] I. Newman,et al. Ion transport in roots: measurement of fluxes using ion-selective microelectrodes to characterize transporter function. , 2001, Plant, cell & environment.