A sensitive enzyme-free electrochemical sensor composed of Co3O4/CuO@MWCNTs nanocomposites for detection of L-lactic acid in sweat solutions
暂无分享,去创建一个
Bairui Tao | Fengjuan Miao | Y. Zang | Wenbo Yang | F. Miao | B. Tao | P. K. Chu
[1] Ayman Badawi,et al. Influence of composition ratio on structural, optical and magnetic properties of NiFe2O4/(1−x)MnO−xCoO composites , 2022, Journal of Materials Science: Materials in Electronics.
[2] Ayman Badawi,et al. Structural, optical, and magnetic properties of ferrite/oxide composites MgFe2O4/(1−x)MnO–xCdO , 2022, Applied Physics A.
[3] Sameh I. Ahmed,et al. Optical and Magnetic Studies of Y-Doped Nano γ-Fe2O3 , 2022, Journal of Inorganic and Organometallic Polymers and Materials.
[4] Yuehua Wu,et al. Flexible polystyrene/graphene composites with epsilon-near-zero properties , 2022, Advanced Composites and Hybrid Materials.
[5] Zhanhu Guo,et al. Recent advances in radio-frequency negative dielectric metamaterials by designing heterogeneous composites , 2022, Advanced Composites and Hybrid Materials.
[6] C. Alemán,et al. Combining 2D organic and 1D inorganic nanoblocks to develop free-standing hybrid nanomembranes for conformable biosensors , 2022, Journal of Nanostructure in Chemistry.
[7] W. Kern,et al. Influence of morphology and chemical surface composition on electrical conductivity of SiC microspheres , 2022, Surface Science.
[8] Z. Heiba,et al. Impact of composition ratio on the structure and optical properties of (1 – x)MnFe2O4/(x)ZnMn2O4 nanocomposite , 2022 .
[9] Z. Heiba,et al. The investigation of structural and magnetic properties of Er2−xCoxO3 nano-oxides , 2021, Journal of Materials Science: Materials in Electronics.
[10] Duo Pan,et al. Precise regulation of weakly negative permittivity in CaCu3Ti4O12 metacomposites by synergistic effects of carbon nanotubes and grapheme , 2021, Advanced Composites and Hybrid Materials.
[11] M. Tokeshi,et al. Electrochemical enzyme-based blood ATP and lactate sensor for a rapid and straightforward evaluation of illness severity , 2021, Biosensors and Bioelectronics.
[12] Duo Pan,et al. Lightweight Fe3C@Fe/C nanocomposites derived from wasted cornstalks with high-efficiency microwave absorption and ultrathin thickness , 2021, Advanced Composites and Hybrid Materials.
[13] Juan Du,et al. Multiwalled carbon nanotubes modified two dimensional MXene with high antifouling property for sensitive detection of ochratoxin A , 2021, Nanotechnology.
[14] Y. Nien,et al. Investigation of Flexible Arrayed Lactate Biosensor Based on Copper Doped Zinc Oxide Films Modified by Iron–Platinum Nanoparticles , 2021, Polymers.
[15] Asnida Abdul Wahab,et al. Review-Enzymatic and Non-Enzymatic Electrochemical Sensor for Lactate Detection in Human Biofluids , 2021 .
[16] R. Ion,et al. Hybrid Materials Based on Multi-Walled Carbon Nanotubes and Nanoparticles with Antimicrobial Properties , 2021, Nanomaterials.
[17] D. Bhatia,et al. Sequential and cellular detection of copper and lactic acid by disaggregation and reaggregation of the fluorescent panchromatic fibres of an acylthiourea based sensor. , 2021, Soft matter.
[18] D. Yoo,et al. Fe3O4 nanorods decorated on polypyrrole/reduced graphene oxide for electrochemical detection of dopamine and photocatalytic degradation of acetaminophen , 2021 .
[19] Gurdeep Rattu,et al. Development of non‐enzymatic ZnO nanocomposite‐based optical sensor for l ‐lactate detection in tomato samples , 2021, International Journal of Food Science & Technology.
[20] Aicheng Chen,et al. Design of an enzyme-mimicking NiO@Au nanocomposite for the sensitive electrochemical detection of lactic acid in human serum and urine , 2021 .
[21] F. Alam,et al. Highly Sensitive Lactic Acid Biosensors Based on Photoresist Derived Carbon , 2020, IEEE Sensors Journal.
[22] G. Maduraiveeran,et al. Ultra-fine nickel sulfide nanoclusters @ nickel sulfide microsphere as enzyme-free electrode materials for sensitive detection of lactic acid , 2020 .
[23] G. Maduraiveeran,et al. Hollow sphere nickel sulfide nanostructures–based enzyme mimic electrochemical sensor platform for lactic acid in human urine , 2020, Microchimica Acta.
[24] M. M. Hussain,et al. A non-enzymatic electrochemical approach for l-lactic acid sensor development based on CuO·MWCNT nanocomposites modified with a Nafion matrix , 2020 .
[25] P. Chu,et al. Heterostructured Co(OH)2 nanosheet-coated CuCo2S4 nanopencils on nickel foam for electrodes in high-performance supercapacitors , 2020, Ionics.
[26] S. Mugo,et al. A Biomimetric Lactate Imprinted Smart Polymers as Capacitive Sweat Sensors , 2020, IEEE Sensors Journal.
[27] Chao Xing,et al. An electrochemical sensor based on enzyme-free recycling amplification for sensitive and specific detection of miRNAs from cancer cells. , 2020, The Analyst.
[28] Lindsay B. Baker,et al. Physiological mechanisms determining eccrine sweat composition , 2020, European Journal of Applied Physiology.
[29] Yu-Ting Cheng,et al. An Inkjet-Printed Flexible Non-Enzymatic Lactate Sensor for Clinical Blood Plasma Test , 2020, IEEE Electron Device Letters.
[30] S. Mercan. A Comprehensive Artificial Sweat Study for Quantitation of Nickel and Other Inorganic Elements Released from Imitation Earrings Purchased in Istanbul Market , 2020, Biological Trace Element Research.
[31] Z. Heiba,et al. Optical and Electrical Properties of Double-Walled Carbon Nanotube/Polyaniline Composite , 2020 .
[32] P. Chu,et al. Co3O4/MnO2/Co(OH)2 on nickel foam composites electrode with excellent electrochemical performance for supercapacitor , 2019, Solid State Sciences.
[33] J. Rayappan,et al. Stalling behaviour of chloride ions: A non-enzymatic electrochemical detection of α-Endosulfan using CuO interface , 2019, Sensors and Actuators B: Chemical.
[34] A. Vomiero,et al. A sensitive enzyme-free lactic acid sensor based on NiO nanoparticles for practical applications , 2019, Analytical Methods.
[35] Muhammad Ishaq Abro,et al. Facile Non‐enzymatic Lactic Acid Sensor Based on Cobalt Oxide Nanostructures , 2019, Electroanalysis.
[36] Martin Cigl,et al. Ultra-performance chromatographic methods for enantioseparation of liquid crystals based on lactic acid , 2019, The Journal of Supercritical Fluids.
[37] M. Maaza,et al. Antibacterial, magnetic, optical and humidity sensor studies of β-CoMoO4 - Co3O4 nanocomposites and its synthesis and characterization. , 2018, Journal of photochemistry and photobiology. B, Biology.
[38] Dong Jin Yoo,et al. Ni-Co/Fe3O4 flower-like nanocomposite for the highly sensitive and selective enzyme free glucose sensor applications , 2017 .
[39] Yunjie Ding,et al. Oxidative dehydrogenation of lactic acid to pyruvic acid over Pb-Pt bimetallic supported on carbon materials , 2017 .
[40] J. Kennedy,et al. Synthesis and enhanced field emission of zinc oxide incorporated carbon nanotubes , 2017 .
[41] G. G. Kumar,et al. One-Pot Synthesis of Graphene Supported CuO Nanorods for the Electrochemical Hydrazine Sensor Applications , 2015 .
[42] F. Ernst,et al. Quantitative assessment of nanoparticle size distributions from HRTEM images , 2006 .
[43] W. Roth. The magnetic structure of Co3O4 , 1964 .