Microfluidic devices with simplified signal readout
暂无分享,去创建一个
Haicong Shen | Chaoyong Yang | Yingzhou Tao | Kunyue Deng | Huimin Zhang | C. Yang | Huimin Zhang | Haicong Shen | Yingzhou Tao | Kunyue Deng
[1] Yoon‐Kyoung Cho,et al. A fidget spinner for the point-of-care diagnosis of urinary tract infection , 2020, Nature Biomedical Engineering.
[2] S Arana,et al. Magnetoresistive immunosensor for the detection of Escherichia coli O157:H7 including a microfluidic network. , 2009, Biosensors & bioelectronics.
[3] Longhua Tang,et al. Plasmon-Based Colorimetric Nanosensors for Ultrasensitive Molecular Diagnostics. , 2017, ACS sensors.
[4] Tae Seok Seo,et al. Centrifugal loop-mediated isothermal amplification microdevice for rapid, multiplex and colorimetric foodborne pathogen detection. , 2016, Biosensors & bioelectronics.
[5] Yanbin Li,et al. A microfluidic colorimetric biosensor for rapid detection of Escherichia coli O157:H7 using gold nanoparticle aggregation and smart phone imaging. , 2019, Biosensors & bioelectronics.
[6] Hongda Chen,et al. Point-of-care testing based on smartphone: The current state-of-the-art (2017-2018). , 2019, Biosensors & bioelectronics.
[7] Yunlei Xianyu,et al. Microfluidics-Implemented Biochemical Assays: From the Perspective of Readout. , 2020, Small.
[8] B. Mukherjee,et al. Different shades of cholesterol: Gold nanoparticles supported on MoS2 nanoribbons for enhanced colorimetric sensing of free cholesterol. , 2015, Biosensors & bioelectronics.
[9] G. Zeng,et al. Peroxidase-Like Activity of Smart Nanomaterials and Their Advanced Application in Colorimetric Glucose Biosensors. , 2019, Small.
[10] Shang Sun,et al. Real-Time Tunable Colors from Microfluidic Reconfigurable All-Dielectric Metasurfaces. , 2018, ACS nano.
[11] Shan X. Wang,et al. Quantification of cDNA on GMR biosensor array towards point-of-care gene expression analysis. , 2019, Biosensors & bioelectronics.
[12] G. Mocz,et al. Fluorescence polarization/anisotropy approaches to study protein-ligand interactions: effects of errors and uncertainties. , 2005, Methods in molecular biology.
[13] G. Cao,et al. A Smartphone-based Point-of-care Microfluidic Platform Fabricated with ZnO Nanorod Template for Colorimetric Virus Detection. , 2019, ACS sensors.
[14] Peng Chen,et al. Microfluidics towards single cell resolution protein analysis , 2019, TrAC Trends in Analytical Chemistry.
[15] Longhua Guo,et al. Sensitive biosensor for p53 DNA sequence based on the photothermal effect of gold nanoparticles and the signal amplification of locked nucleic acid functionalized DNA walkers using a thermometer as readout. , 2020, Talanta.
[16] Yang Wang,et al. Trends in miniaturized biosensors for point-of-care testing , 2020 .
[17] Stephen R. Quake,et al. Microfluidic Digital PCR Enables Multigene Analysis of Individual Environmental Bacteria , 2006, Science.
[18] Kunal Sur,et al. Immiscible phase nucleic acid purification eliminates PCR inhibitors with a single pass of paramagnetic particles through a hydrophobic liquid. , 2010, The Journal of molecular diagnostics : JMD.
[19] Ruslan Álvarez-Diduk,et al. Electrochromic Molecular Imprinting Sensor for Visual and Smartphone-Based Detections. , 2018, Analytical chemistry.
[20] Simon Chi-Chin Shiu,et al. A portable microfluidic Aptamer-Tethered Enzyme Capture (APTEC) biosensor for malaria diagnosis. , 2018, Biosensors & bioelectronics.
[21] Tyler R. Ray,et al. Soft, Skin‐Interfaced Microfluidic Systems with Passive Galvanic Stopwatches for Precise Chronometric Sampling of Sweat , 2019, Advanced materials.
[22] Xiujun Li,et al. Remotely tunable microfluidic platform driven by nanomaterial-mediated on-demand photothermal pumping. , 2020, Lab on a chip.
[23] Haider Butt,et al. Wearable Contact Lens Biosensors for Continuous Glucose Monitoring Using Smartphones , 2018, ACS nano.
[24] Wei Huang,et al. Microfluidic multi-angle laser scattering system for rapid and label-free detection of waterborne parasites. , 2018, Biomedical optics express.
[25] Weihua Huang,et al. Detection of exosomes by ZnO nanowires coated three-dimensional scaffold chip device. , 2018, Biosensors & bioelectronics.
[26] David M. Rissin,et al. Single-Molecule enzyme-linked immunosorbent assay detects serum proteins at subfemtomolar concentrations , 2010, Nature Biotechnology.
[27] R. Bashir,et al. Smartphone-based multiplex 30-minute nucleic acid test of live virus from nasal swab extract. , 2020, Lab on a chip.
[28] K. Sugioka,et al. 3D Microfluidic Surface‐Enhanced Raman Spectroscopy (SERS) Chips Fabricated by All‐Femtosecond‐Laser‐Processing for Real‐Time Sensing of Toxic Substances , 2018 .
[29] John A. Rogers,et al. Passive sweat collection and colorimetric analysis of biomarkers relevant to kidney disorders using a soft microfluidic system. , 2019, Lab on a chip.
[30] Xingyu Jiang,et al. Microfluidics for Biomedical Analysis , 2020 .
[31] W. Shi,et al. Ultrasensitive and Simultaneous Detection of Two Cytokines Secreted by Single Cell in Microfluidic Droplets via Magnetic-Field Amplified SERS. , 2019, Analytical chemistry.
[32] Yanling Song,et al. Microfluidic-Integrated Multicolor Immunosensor for Visual Detection of HIV-1 p24 Antigen with the Naked Eye. , 2020, Analytical chemistry.
[33] Baqia Al Mughairy,et al. Recent analytical advancements in microfluidics using chemiluminescence detection systems for food analysis , 2020 .
[34] Hao‐Li Zhang,et al. A strongly coupled Au/Fe3O4/GO hybrid material with enhanced nanozyme activity for highly sensitive colorimetric detection, and rapid and efficient removal of Hg(2+) in aqueous solutions. , 2015, Nanoscale.
[35] John A Rogers,et al. Soft, Skin-Integrated Multifunctional Microfluidic Systems for Accurate Colorimetric Analysis of Sweat Biomarkers and Temperature. , 2019, ACS sensors.
[36] Zhenyu Lin,et al. Highly Uniform Gold Nanobipyramids for Ultrasensitive Colorimetric Detection of Influenza Virus. , 2017, Analytical chemistry.
[37] Zhao Li,et al. Quantitation of Femtomolar Protein Biomarkers Using a Simple Microbubbling Digital Assay via Bright-field Smartphone Imaging. , 2019, Angewandte Chemie.
[38] Xiaoquan Lu,et al. Enhanced Thermometric Sensor for Arsenate Analysis Based on Dual Temperature Readout Signaling Strategy. , 2020, Analytical chemistry.
[39] John A. Rogers,et al. Waterproof, electronics-enabled, epidermal microfluidic devices for sweat collection, biomarker analysis, and thermography in aquatic settings , 2019, Science Advances.
[40] Molly M. Stevens,et al. Colloidal nanoparticles as advanced biological sensors , 2014, Science.
[41] C. Mirkin,et al. Nanoparticle-Based Bio-Bar Codes for the Ultrasensitive Detection of Proteins , 2003, Science.
[42] Lukas Mathur,et al. Microfluidics as an Enabling Technology for Personalized Cancer Therapy. , 2019, Small.
[43] Fan Yang,et al. Integrated Smartphone-App-Chip System for On-Site Parts-Per-Billion-Level Colorimetric Quantitation of Aflatoxins. , 2017, Analytical chemistry.
[44] W. Jin,et al. Ultra-sensitive all-fibre photothermal spectroscopy with large dynamic range , 2015, Nature Communications.
[45] Xing Xu,et al. Recent Progress in Microfluidics-Based Biosensing. , 2018, Analytical chemistry.
[46] Richard M Maceiczyk,et al. A Photothermal Spectrometer for Fast and Background-Free Detection of Individual Nanoparticles in Flow. , 2017, Analytical chemistry.
[47] Richard M Maceiczyk,et al. Differential detection photothermal spectroscopy: towards ultra-fast and sensitive label-free detection in picoliter & femtoliter droplets. , 2017, Lab on a chip.
[48] Da Xing,et al. A handheld flow genetic analysis system (FGAS): towards rapid, sensitive, quantitative and multiplex molecular diagnosis at the point-of-care level. , 2015, Lab on a chip.
[49] David J Beebe,et al. One-step purification of nucleic acid for gene expression analysis via Immiscible Filtration Assisted by Surface Tension (IFAST). , 2011, Lab on a chip.
[50] Mohamed S Draz,et al. Virus detection using nanoparticles and deep neural network–enabled smartphone system , 2020, Science advances.
[51] Sung-Yong Park,et al. Smartphone integrated optoelectrowetting (SiOEW) for on-chip sample processing and microscopic detection of water quality. , 2018, Lab on a chip.
[52] Gunther Roelkens,et al. On-Chip Mid-Infrared Photothermal Spectroscopy Using Suspended Silicon-on-Insulator Microring Resonators , 2016 .
[53] Longhua Guo,et al. Development of an immunosensor based on the exothermic reaction between H2O and CaO using a common thermometer as readout. , 2019, ACS sensors.
[54] Shunbo Li,et al. Rapid identification of alpha-fetoprotein in serum by a microfluidic SERS chip integrated with Ag/Au Nanocomposites , 2020 .
[55] Q. Wei,et al. An Aptamer-Based Fluorescent Sensor Array for Rapid Detection of Cyanotoxins on a Smartphone. , 2019, Analytical chemistry.
[56] F. Hu,et al. Smartphone-based droplet digital LAMP device with rapid nucleic acid isolation for highly sensitive point-of-care detection. , 2019, Analytical chemistry.
[57] D. Jameson,et al. Steady-state fluorescence polarization/anisotropy for the study of protein interactions. , 2014, Methods in molecular biology.
[58] Longhua Guo,et al. Flexible and Adhesive Surface Enhance Raman Scattering Active Tape for Rapid Detection of Pesticide Residues in Fruits and Vegetables. , 2016, Analytical chemistry.
[59] David A Selck,et al. Increased robustness of single-molecule counting with microfluidics, digital isothermal amplification, and a mobile phone versus real-time kinetic measurements. , 2013, Analytical chemistry.
[60] A. deMello,et al. SERS Barcode Libraries: A Microfluidic Approach , 2020, Advanced science.
[61] Yi Hu,et al. Absolute Quantification of H5-Subtype Avian Influenza Viruses Using Droplet Digital Loop-Mediated Isothermal Amplification. , 2017, Analytical chemistry.
[62] Zhi Zhu,et al. Highly Sensitive and Automated Surface Enhanced Raman Scattering-based Immunoassay for H5N1 Detection with Digital Microfluidics. , 2018, Analytical chemistry.
[63] Hau Van Nguyen,et al. Smart phone-powered capillary electrophoresis on a chip for foodborne bacteria detection , 2019 .
[64] Liu-yin Fan,et al. Enzyme catalysis-electrophoresis titration for multiplex enzymatic assay via moving reaction boundary chip. , 2016, Lab on a chip.
[65] J. Cui,et al. SERS-Based Pump-Free Microfluidic Chip for Highly Sensitive Immunoassay of Prostate-Specific Antigen Biomarkers. , 2019, ACS sensors.
[66] Molly M Stevens,et al. A Serological Point-of-Care Test for the Detection of IgG Antibodies against Ebola Virus in Human Survivors. , 2018, ACS nano.
[67] K. Mawatari,et al. Thermo-optical Characterization of Photothermal Optical Phase Shift Detection in Extended-Nano Channels and UV Detection of Biomolecules. , 2017, Analytical chemistry.
[68] Xuan-yu He,et al. Ultrasensitive, recyclable and portable microfluidic surface-enhanced raman scattering (SERS) biosensor for uranyl ions detection , 2020 .
[69] Ying Lu,et al. A portable microfluidic analyzer for integrated bacterial detection using visible loop-mediated amplification , 2020 .
[70] Zhuyuan Wang,et al. Array-assisted SERS microfluidic chip for highly-sensitive and multiplex gas sensing. , 2019, ACS applied materials & interfaces.
[71] Peng Liu,et al. A smartphone-assisted microfluidic chemistry analyzer using image-based colorimetric assays for multi-index monitoring of diabetes and hyperlipidemia. , 2019, Analytica chimica acta.
[72] Liu-yin Fan,et al. A Facile, Rapid and Low-cost Electrophoresis Titration of Thrombin by Aptamer-linked Magnetic Nanoparticle and Redox Boundary Chip. , 2019, ACS applied materials & interfaces.
[73] L. Qin,et al. CRISPR-Cas12a Coupled with Platinum Nano-Reporter for Visual Quantification of SNVs on a Volumetric Bar-Chart Chip. , 2019, Analytical chemistry.
[74] Facile Counting of Ligands Capped on Nanoparticles via a Titration Chip of Moving Reaction Boundary Electrophoresis. , 2019, Analytical chemistry.
[75] Youli Zu,et al. Multiplexed volumetric bar-chart chip for point-of-care diagnostics , 2012, Nature Communications.
[76] Zhaopeng Chen,et al. Plasmonic colorimetric sensors based on etching and growth of noble metal nanoparticles: Strategies and applications. , 2018, Biosensors & bioelectronics.
[77] Jixuan Liu,et al. Smartphone-based analytical biosensors. , 2018, The Analyst.
[78] D. Park,et al. FAST: Size-Selective, Clog-Free Isolation of Rare Cancer Cells from Whole Blood at a Liquid-Liquid Interface. , 2017, Analytical chemistry.
[79] M. Srisa-Art,et al. Microfluidic approach for in situ synthesis of nanoporous silver microstructures as on-chip SERS substrates , 2018, Sensors and Actuators B: Chemical.
[80] Yi Lu,et al. Translating molecular detections into a simple temperature test using a target-responsive smart thermometer† †Electronic supplementary information (ESI) available: Details of the experimental procedures and other figures. See DOI: 10.1039/c7sc05325h , 2018, Chemical science.
[81] Sungho Ko,et al. A smartphone-based optical platform for colorimetric analysis of microfluidic device , 2017 .
[82] M. Mauk,et al. Interfacing Pathogen Detection with Smartphones for Point-of-Care Applications. , 2018, Analytical chemistry.
[83] Yanling Song,et al. Portable visual quantitative detection of aflatoxin B1 using a target-responsive hydrogel and a distance-readout microfluidic chip. , 2016, Lab on a chip.
[84] Shan X Wang,et al. nanoLAB: an ultraportable, handheld diagnostic laboratory for global health. , 2011, Lab on a chip.
[85] Xinli Liu,et al. Rapid identification of urinary tract infections based on ultrasensitive bacteria detection using volumetric bar-chart chip , 2019, Sensors and Actuators B: Chemical.
[86] Jeffrey B. Model,et al. Soft, skin-interfaced microfluidic systems with integrated enzymatic assays for measuring the concentration of ammonia and ethanol in sweat. , 2019, Lab on a chip.
[87] Stig Pedersen-Bjergaard,et al. The modern role of smartphones in analytical chemistry , 2019, TrAC Trends in Analytical Chemistry.
[88] Xinli Liu,et al. Enzyme-mimicking accelerated signal enhancement for visually multiplexed quantitation of telomerase activity. , 2020, Chemical communications.
[89] A. Boisen,et al. Injection-Molded Microfluidic Device for SERS Sensing Using Embedded Au-Capped Polymer Nanocones. , 2018, ACS applied materials & interfaces.
[90] Bing Sun,et al. Multiplexed quantification of nucleic acids with large dynamic range using multivolume digital RT-PCR on a rotational SlipChip tested with HIV and hepatitis C viral load. , 2011, Journal of the American Chemical Society.
[91] Feng Xu,et al. Multiplexed Instrument-Free Bar-Chart SpinChip Integrated with Nanoparticle-Mediated Magnetic Aptasensors for Visual Quantitative Detection of Multiple Pathogens. , 2018, Analytical chemistry.
[92] Qingyun Liu,et al. FePt-Au ternary metallic nanoparticles with the enhanced peroxidase-like activity for ultrafast colorimetric detection of H2O2 , 2018 .
[93] Todd Munson,et al. Theoretical design and analysis of multivolume digital assays with wide dynamic range validated experimentally with microfluidic digital PCR. , 2011, Analytical chemistry.
[94] Qian Tian,et al. Simple, Cost-Effective 3D Printed Microfluidic Components for Disposable, Point-of-Care Colorimetric Analysis , 2016 .
[95] John A Rogers,et al. A fluorometric skin-interfaced microfluidic device and smartphone imaging module for in situ quantitative analysis of sweat chemistry. , 2018, Lab on a chip.
[96] Yanling Song,et al. Gas-generating reactions for point-of-care testing. , 2018, The Analyst.
[97] Nam-Joon Cho,et al. Strategies for enhancing the sensitivity of plasmonic nanosensors , 2015 .
[98] C. Cao,et al. Retardation signal for fluorescent determination of total protein content via rapid and sensitive chip moving reaction boundary electrophoretic titration. , 2014, Analytical chemistry.
[99] Manoj Kumar Kanakasabapathy,et al. An automated smartphone-based diagnostic assay for point-of-care semen analysis , 2017, Science Translational Medicine.
[100] Sharma T Sanjay,et al. Exploration of Nanoparticle-Mediated Photothermal Effect of TMB-H2O2 Colorimetric System and Its Application in a Visual Quantitative Photothermal Immunoassay. , 2018, Analytical chemistry.
[101] Elaine Ng,et al. Giant magnetoresistive sensor array for sensitive and specific multiplexed food allergen detection. , 2016, Biosensors & bioelectronics.
[103] David R Walt,et al. Digital concentration readout of single enzyme molecules using femtoliter arrays and Poisson statistics. , 2006, Nano letters.
[104] Claude C. Grigsby,et al. Super-Absorbent Polymer Valves and Colorimetric Chemistries for Time-Sequenced Discrete Sampling and Chloride Analysis of Sweat via Skin-Mounted Soft Microfluidics. , 2018, Small.
[105] Tae Seok Seo,et al. Fully automated and colorimetric foodborne pathogen detection on an integrated centrifugal microfluidic device. , 2016, Lab on a chip.
[106] Zhi Zhu,et al. A Shake&Read distance-based microfluidic chip as a portable quantitative readout device for highly sensitive point-of-care testing. , 2016, Chemical communications.
[107] Jesus Rodriguez-Manzano,et al. Reading Out Single-Molecule Digital RNA and DNA Isothermal Amplification in Nanoliter Volumes with Unmodified Camera Phones , 2016, ACS nano.
[108] Jinhong Guo,et al. Automatic smartphone-based microfluidic biosensor system at the point of care. , 2018, Biosensors & bioelectronics.
[109] Longhua Guo,et al. Target-triggered aggregation of gold nanoparticles for photothermal quantitative detection of adenosine using a thermometer as readout. , 2020, Analytica chimica acta.
[110] Ling Yu,et al. On-chip RT-LAMP and colorimetric detection of the prostate cancer 3 biomarker with an integrated thermal and imaging box. , 2020, Talanta.
[111] Juejun Hu,et al. Ultra-sensitive chemical vapor detection using micro-cavity photothermal spectroscopy. , 2010, Optics express.
[112] Zhi Zhu,et al. Distance-based microfluidic quantitative detection methods for point-of-care testing. , 2016, Lab on a chip.
[113] D. Pang,et al. Plasmonic and Photothermal Immunoassay via Enzyme-Triggered Crystal Growth on Gold Nanostars. , 2018, Analytical chemistry.
[114] Lidong Qin,et al. A multistage volumetric bar chart chip for visualized quantification of DNA. , 2013, Journal of the American Chemical Society.
[115] Kui Xu,et al. Photothermal Microfluidic Sensing Platform Using Near-Infrared Laser-Driven Multiplexed Dual-Mode Visual Quantitative Readout. , 2019, Analytical chemistry.
[116] S. Saud,et al. Simple Chip Electrophoresis Titration of Neutralization Boundary with EDTA Photocatalysis for Distance-Based Sensing of Melamine in Dairy Products. , 2018, Analytical chemistry.
[117] Xiaoqing Pan,et al. Controlled synthesis of spinel ZnFe2O4 decorated ZnO heterostructures as peroxidase mimetics for enhanced colorimetric biosensing. , 2013, Chemical communications.
[118] Li Lin,et al. Visual Quantitative Detection of Circulating Tumor Cells with Single-Cell Sensitivity Using a Portable Microfluidic Device. , 2019, Small.
[119] Zachary J Smith,et al. Nanogap Plasmonic Structures Fabricated by Switchable Capillary‐Force Driven Self‐Assembly for Localized Sensing of Anticancer Medicines with Microfluidic SERS , 2020, Advanced Functional Materials.
[120] Ling Yu,et al. Improved analytical performance of smartphone-based colorimetric analysis by using a power-free imaging box , 2019, Sensors and Actuators B: Chemical.
[121] Theocharis Berris,et al. A novel approach for detection and quantification of magnetic nanomarkers using a spin valve GMR-integrated microfluidic sensor , 2015 .
[122] David R Walt,et al. Digital readout of target binding with attomole detection limits via enzyme amplification in femtoliter arrays. , 2006, Journal of the American Chemical Society.
[123] Jinzhao Song,et al. Smartphone-Based Mobile Detection Platform for Molecular Diagnostics and Spatiotemporal Disease Mapping. , 2018, Analytical chemistry.
[124] Lei Su,et al. A Microfluidic Chip-based Wearable Colorimetric Sensor for Simple and Facile Detection of Sweat Glucose. , 2019, Analytical chemistry.
[125] Zhi Zhu,et al. Afi-Chip: An Equipment-Free, Low-Cost, and Universal Binding Ligand Affinity Evaluation Platform. , 2016, Analytical chemistry.
[126] Yiping Cui,et al. Combining Multiplex SERS Nanovectors and Multivariate Analysis for In Situ Profiling of Circulating Tumor Cell Phenotype Using a Microfluidic Chip. , 2018, Small.
[127] Ping Wang,et al. Integration of platinum nanoparticles with a volumetric bar-chart chip for biomarker assays. , 2014, Angewandte Chemie.
[128] Yuanchang Liu,et al. Smartphone-app based point-of-care testing for myocardial infarction biomarker cTnI using an autonomous capillary microfluidic chip with self-aligned on-chip focusing (SOF) lenses. , 2019, Lab on a chip.
[129] Daeshik Kang,et al. Thin, Soft, Skin‐Mounted Microfluidic Networks with Capillary Bursting Valves for Chrono‐Sampling of Sweat , 2017, Advanced healthcare materials.
[130] Zhi Zhu,et al. A fully integrated distance readout ELISA-Chip for point-of-care testing with sample-in-answer-out capability. , 2017, Biosensors & bioelectronics.
[131] Martin A M Gijs,et al. Attomolar protein detection using a magnetic bead surface coverage assay. , 2013, Lab on a chip.
[132] H Aldewachi,et al. Gold nanoparticle-based colorimetric biosensors. , 2018, Nanoscale.
[133] Yunfei Sun,et al. Microfluidic diffraction phase microscopy for high-throughput, artifact-free quantitative phase imaging and identification of waterborne parasites , 2019 .
[134] Zhi Zhu,et al. Au@Pt nanoparticle encapsulated target-responsive hydrogel with volumetric bar-chart chip readout for quantitative point-of-care testing. , 2014, Angewandte Chemie.
[135] J. Choo,et al. Analysis of deoxyribonuclease activity by conjugation-free fluorescence polarisation in sub-nanolitre droplets. , 2020, The Analyst.
[136] Longhua Guo,et al. Noble Metal Nanoparticle-Based Multicolor Immunoassays: An Approach toward Visual Quantification of the Analytes with the Naked Eye. , 2019, ACS sensors.
[137] Drew A. Hall,et al. Quantification of Protein Interactions and Solution Transport Using High-Density GMR Sensor Arrays , 2011, Nature nanotechnology.
[138] Sam Emaminejad,et al. Fully integrated wearable sensor arrays for multiplexed in situ perspiration analysis , 2016, Nature.
[139] E. Rees,et al. Quantitative Affinity Determination by Fluorescence Anisotropy Measurements of Individual Nanoliter Droplets , 2017, Analytical chemistry.
[140] R. Weissleder,et al. Fluorescence anisotropy imaging in drug discovery. , 2018, Advanced drug delivery reviews.
[141] Yuzhen Wang,et al. A versatile quantitation platform based on platinum nanoparticles incorporated volumetric bar-chart chip for highly sensitive assays. , 2016, Biosensors & bioelectronics.
[142] Lei Li,et al. A facile approach for on-site evaluation of nicotine in tobacco and environmental tobacco smoke. , 2019, ACS sensors.
[143] Jeonghyun Kim,et al. Battery-free, skin-interfaced microfluidic/electronic systems for simultaneous electrochemical, colorimetric, and volumetric analysis of sweat , 2019, Science Advances.
[144] Robert L White,et al. Multiplex protein assays based on real-time magnetic nanotag sensing , 2008, Proceedings of the National Academy of Sciences.
[145] S. Saud,et al. Portable electrophoresis titration chip model for sensing of uric acid in urine and blood by moving reaction boundary , 2019, Sensors and Actuators B: Chemical.