Recent Progress in Wearable Biosensors: From Healthcare Monitoring to Sports Analytics
暂无分享,去创建一个
Shilun Feng | Shengtai Bian | Shun Ye | Liang Huang | Shilun Feng | Shengtai Bian | Liang Huang | Shun Ye
[1] Kin Fong Lei,et al. Development of graphene-based sensors on paper substrate for the measurement of pH value of analyte , 2016, BioChip Journal.
[2] Ted Rosen,et al. Medical Adhesives and Patient Safety: State of the Science Consensus Statements for the Assessment, Prevention, and Treatment of Adhesive-Related Skin Injuries , 2013, Journal of wound, ostomy, and continence nursing : official publication of The Wound, Ostomy and Continence Nurses Society.
[3] P. Georgiou,et al. Microneedle biosensors for real-time, minimally invasive drug monitoring of phenoxymethylpenicillin: a first-in-human evaluation in healthy volunteers. , 2019, The Lancet. Digital health.
[4] D. Figeys,et al. Lab-on-a-chip: a revolution in biological and medical sciences , 2000, Analytical chemistry.
[5] 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.
[6] Wei Gao,et al. A laser-engraved wearable sensor for sensitive detection of uric acid and tyrosine in sweat , 2019, Nature Biotechnology.
[7] Jeonghyun Kim,et al. Materials and Device Designs for an Epidermal UV Colorimetric Dosimeter with Near Field Communication Capabilities , 2017 .
[8] Shalini Prasad,et al. Portable biosensor for monitoring cortisol in low-volume perspired human sweat , 2017, Scientific Reports.
[9] R. Hughes,et al. Ammonia and the neutrophil in the pathogenesis of hepatic encephalopathy in cirrhosis , 2010, Hepatology.
[10] D. Giugliano,et al. Glucose metabolism and hyperglycemia. , 2008, The American journal of clinical nutrition.
[11] John A Rogers,et al. Skin-interfaced systems for sweat collection and analytics , 2018, Science Advances.
[12] Piotr Garstecki,et al. Droplet microfluidics for microbiology: techniques, applications and challenges. , 2016, Lab on a chip.
[13] Xu Xie,et al. Flexible and Stretchable 3ω Sensors for Thermal Characterization of Human Skin , 2017 .
[14] Wenzhao Jia,et al. Wearable temporary tattoo sensor for real-time trace metal monitoring in human sweat , 2015 .
[15] Zhen Gu,et al. Microneedle-array patches loaded with hypoxia-sensitive vesicles provide fast glucose-responsive insulin delivery , 2015, Proceedings of the National Academy of Sciences.
[16] Ananthakumar Ramadoss,et al. A review on inkjet printing of nanoparticle inks for flexible electronics , 2019, Journal of Materials Chemistry C.
[17] Jacob W. Coffey,et al. Early circulating biomarker detection using a wearable microprojection array skin patch. , 2013, Biomaterials.
[18] Yong Lin,et al. Ultrasensitive Cracking-Assisted Strain Sensors Based on Silver Nanowires/Graphene Hybrid Particles. , 2016, ACS applied materials & interfaces.
[19] Yihui Zhang,et al. Binodal, wireless epidermal electronic systems with in-sensor analytics for neonatal intensive care , 2019, Science.
[20] Hye Rim Cho,et al. A graphene-based electrochemical device with thermoresponsive microneedles for diabetes monitoring and therapy. , 2016, Nature nanotechnology.
[21] E. Goldys,et al. Graphene Oxide Thin Film with Dual Function Integrated into a Nanosandwich Device for in Vivo Monitoring of Interleukin-6. , 2017, ACS applied materials & interfaces.
[22] Simon R Corrie,et al. Surface-modified microprojection arrays for intradermal biomarker capture, with low non-specific protein binding. , 2010, Lab on a chip.
[23] Dino Di Carlo,et al. Dynamic single-cell analysis for quantitative biology. , 2006, Analytical chemistry.
[24] 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.
[25] R. White,et al. Skin adhesives and their role in wound dressings , 2007 .
[26] Tao Dong,et al. Detection of Urinary Tract Infections on lab-on-chip device by measuring photons emitted from ATP bioluminescence , 2014, 2014 36th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[27] I. Park,et al. Highly stretchable and sensitive strain sensor based on silver nanowire-elastomer nanocomposite. , 2014, ACS nano.
[28] Gérald Thouand,et al. Improvement of the identification of four heavy metals in environmental samples by using predictive decision tree models coupled with a set of five bioluminescent bacteria. , 2011, Environmental science & technology.
[29] Chenjie Xu,et al. Recent advances in the design of polymeric microneedles for transdermal drug delivery and biosensing. , 2017, Lab on a chip.
[30] P. Dykes,et al. Effects of adhesive dressings on the stratum corneum of the skin. , 2001, Journal of wound care.
[31] Alexandra G Martinez,et al. Electrochemical sensing based on printable temporary transfer tattoos. , 2012, Chemical communications.
[32] I. Park,et al. Stretchable, Skin‐Mountable, and Wearable Strain Sensors and Their Potential Applications: A Review , 2016 .
[33] Seong-Gu Hong,et al. Silicone‐Based Adhesives with Highly Tunable Adhesion Force for Skin‐Contact Applications , 2017, Advanced healthcare materials.
[34] E. Yoon,et al. Scaling and automation of a high-throughput single-cell-derived tumor sphere assay chip. , 2016, Lab on a chip.
[35] Jung Woo Lee,et al. Epidermal electronics with advanced capabilities in near-field communication. , 2015, Small.
[36] Nancy Kelley-Loughnane,et al. Adhesive RFID Sensor Patch for Monitoring of Sweat Electrolytes , 2015, IEEE Transactions on Biomedical Engineering.
[37] Shalini Prasad,et al. Lancet-free and label-free diagnostics of glucose in sweat using Zinc Oxide based flexible bioelectronics , 2017 .
[38] Yonggang Huang,et al. Materials and Mechanics for Stretchable Electronics , 2010, Science.
[39] Bo Liang,et al. Three-dimensional paper-based microfluidic electrochemical integrated devices (3D-PMED) for wearable electrochemical glucose detection , 2019, RSC advances.
[40] Yong-Hoon Kim,et al. Highly Sensitive Textile Strain Sensors and Wireless User-Interface Devices Using All-Polymeric Conducting Fibers. , 2017, ACS applied materials & interfaces.
[41] S. Lindström,et al. Miniaturization of biological assays -- overview on microwell devices for single-cell analyses. , 2011, Biochimica et biophysica acta.
[42] Mei-Lien Chen,et al. Uric acid and urea in human sweat. , 2002, The Chinese journal of physiology.
[43] John A Rogers,et al. Soft, Skin-Integrated Multifunctional Microfluidic Systems for Accurate Colorimetric Analysis of Sweat Biomarkers and Temperature. , 2019, ACS sensors.
[44] Xuan Wu,et al. Selectively plated stretchable liquid metal wires for transparent electronics , 2015 .
[45] E. Magiorkinis,et al. The fascinating story of urine examination: From uroscopy to the era of microscopy and beyond , 2015, Diagnostic cytopathology.
[46] Sam Emaminejad,et al. A Wearable Electrochemical Platform for Noninvasive Simultaneous Monitoring of Ca(2+) and pH. , 2016, ACS nano.
[47] N. Lovell,et al. Advances in Sweat Wearables: Sample Extraction, Real-Time Biosensing, and Flexible Platforms. , 2020, ACS applied materials & interfaces.
[48] Yonggang Huang,et al. Silicon nanomembranes for fingertip electronics , 2012, Nanotechnology.
[49] E. Meng,et al. High strain biocompatible polydimethylsiloxane-based conductive graphene and multiwalled carbon nanotube nanocomposite strain sensors , 2013 .
[50] Shan He,et al. Recent Progress in 3D Printed Mold-Based Sensors , 2020, Sensors.
[51] S. Prasad,et al. A Sweat-based Wearable Enabling Technology for Real-time Monitoring of IL-1β and CRP as Potential Markers for Inflammatory Bowel Disease. , 2020, Inflammatory bowel diseases.
[52] Qifa Zhou,et al. Monitoring of the central blood pressure waveform via a conformal ultrasonic device , 2018, Nature Biomedical Engineering.
[53] Yicong Zhao,et al. Mechanisms and Materials of Flexible and Stretchable Skin Sensors , 2017, Micromachines.
[54] John A Rogers,et al. Wearable Sensors for Biochemical Sweat Analysis. , 2019, Annual review of analytical chemistry.
[55] Gyoujin Cho,et al. Methylxanthine Drug Monitoring with Wearable Sweat Sensors , 2018, Advanced materials.
[56] Sam Emaminejad,et al. Autonomous sweat extraction and analysis applied to cystic fibrosis and glucose monitoring using a fully integrated wearable platform , 2017, Proceedings of the National Academy of Sciences.
[57] G S Sayler,et al. Monitoring of naphthalene catabolism by bioluminescence with nah-lux transcriptional fusions , 1990, Journal of bacteriology.
[58] Joseph Wang,et al. Wearable salivary uric acid mouthguard biosensor with integrated wireless electronics. , 2015, Biosensors & bioelectronics.
[59] G. Urban,et al. Designed miniaturization of microfluidic biosensor platforms using the stop-flow technique. , 2016, The Analyst.
[60] Jeonghyun Kim,et al. An Epidermal Stimulation and Sensing Platform for Sensorimotor Prosthetic Control, Management of Lower Back Exertion, and Electrical Muscle Activation , 2016, Advanced materials.
[61] Joseph Wang,et al. Noninvasive Alcohol Monitoring Using a Wearable Tattoo-Based Iontophoretic-Biosensing System , 2016 .
[62] P. Vogt,et al. Percutaneous Collagen Induction Therapy: An Alternative Treatment for Scars, Wrinkles, and Skin Laxity , 2008, Plastic and reconstructive surgery.
[63] Ke Yang,et al. Novel developments in mobile sensing based on the integration of microfluidic devices and smartphones. , 2016, Lab on a chip.
[64] Yi-Hsing Hsiao,et al. A microfluidic dual-well device for high-throughput single-cell capture and culture. , 2015, Lab on a chip.
[65] Wei Gao,et al. Wearable Microsensor Array for Multiplexed Heavy Metal Monitoring of Body Fluids , 2016 .
[66] Kang-Hoon Lee,et al. Treatment of acne vulgaris with fractional radiofrequency microneedling , 2014, The Journal of dermatology.
[67] C. Waldauf,et al. Inkjet-printed polymer-fullerene blends for organic electronic applications , 2012 .
[68] Shu Chen,et al. A Wearable Device for Real-Time Motion Error Detection and Vibrotactile Instructional Cuing , 2011, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[69] Ying Zhang,et al. Development of Lidocaine-Coated Microneedle Product for Rapid, Safe, and Prolonged Local Analgesic Action , 2011, Pharmaceutical Research.
[70] Derek G Rodeback,et al. Salivary uric acid as a noninvasive biomarker of metabolic syndrome , 2012, Diabetology & Metabolic Syndrome.
[71] Evgeny Katz,et al. Implanted biofuel cells operating in vivo – methods, applications and perspectives – feature article , 2013 .
[72] Haonan Si,et al. Flexible and Highly Sensitive Strain Sensors Fabricated by Pencil Drawn for Wearable Monitor , 2015 .
[73] Zhenan Bao,et al. Biodegradable and flexible arterial-pulse sensor for the wireless monitoring of blood flow , 2019, Nature Biomedical Engineering.
[74] D Driver,et al. Handbook of adhesion , 1993 .
[75] R. Zengerle,et al. Microfluidic lab-on-a-chip platforms: requirements, characteristics and applications. , 2010, Chemical Society reviews.
[76] Tuomas Happonen,et al. Porous Enzymatic Membrane for Nanotextured Glucose Sweat Sensors with High Stability toward Reliable Noninvasive Health Monitoring , 2019, ECS Meeting Abstracts.
[77] Wenzhao Jia,et al. Non-invasive mouthguard biosensor for continuous salivary monitoring of metabolites. , 2014, The Analyst.
[78] Elisa Michelini,et al. Smartphone-interfaced 3D printed toxicity biosensor integrating bioluminescent “sentinel cells” , 2016 .
[79] John A Rogers,et al. Miniaturized Battery‐Free Wireless Systems for Wearable Pulse Oximetry , 2017, Advanced functional materials.
[80] Roger Narayan,et al. Microneedle‐Based Transdermal Sensor for On‐Chip Potentiometric Determination of K+ , 2014, Advanced healthcare materials.
[81] Daeshik Kang,et al. Thin, Soft, Skin‐Mounted Microfluidic Networks with Capillary Bursting Valves for Chrono‐Sampling of Sweat , 2017, Advanced healthcare materials.
[82] Jingjing Liu,et al. Smartphone-based battery-free and flexible electrochemical patch for calcium and chloride ions detections in biofluids , 2019, Sensors and Actuators B: Chemical.
[83] J. Windmiller,et al. A potentiometric tattoo sensor for monitoring ammonium in sweat. , 2013, The Analyst.
[84] S. Feng,et al. 3D printed mould-based graphite/PDMS sensor for low-force applications , 2018, Sensors and Actuators A: Physical.
[85] Giuseppe Barillaro,et al. Microneedles for Transdermal Biosensing: Current Picture and Future Direction , 2015, Advanced healthcare materials.
[86] Soo Hyeon Kim,et al. Efficient analysis of a small number of cancer cells at the single-cell level using an electroactive double-well array. , 2016, Lab on a chip.
[87] YongAn Huang,et al. Inkjet printing for flexible electronics: Materials, processes and equipments , 2010 .
[88] Quanyin Hu,et al. Synergistic Transcutaneous Immunotherapy Enhances Antitumor Immune Responses through Delivery of Checkpoint Inhibitors. , 2016, ACS nano.
[89] Giovanni Neri,et al. Miniaturized Bio-and Chemical-Sensors for Point-of-Care Monitoring of Chronic Kidney Diseases , 2018, Sensors.
[90] Feng Chen,et al. Oral microbiomes: more and more importance in oral cavity and whole body , 2018, Protein & Cell.
[91] K. Novoselov,et al. All inkjet-printed graphene-based conductive patterns for wearable e-textile applications , 2017 .
[92] John A Rogers,et al. Soft, Skin-Interfaced Microfluidic Systems with Wireless, Battery-Free Electronics for Digital, Real-Time Tracking of Sweat Loss and Electrolyte Composition. , 2018, Small.
[93] John A Rogers,et al. Wireless, Battery-Free Epidermal Electronics for Continuous, Quantitative, Multimodal Thermal Characterization of Skin. , 2018, Small.
[94] A. Abbaspourrad,et al. A versatile, cost-effective, and flexible wearable biosensor for in situ and ex situ sweat analysis, and personalized nutrition assessment. , 2019, Lab on a chip.
[95] L. Stefano,et al. Microneedles-based electrochemical sensors: New tools for advanced biosensing , 2019, Current Opinion in Electrochemistry.
[96] Joshua Ray Windmiller,et al. Continuous minimally-invasive alcohol monitoring using microneedle sensor arrays. , 2017, Biosensors & bioelectronics.
[97] Ali Javey,et al. Flexible Electrochemical Bioelectronics: The Rise of In Situ Bioanalysis , 2019, Advanced materials.
[98] Sushmee Badhulika,et al. Low cost, flexible and biodegradable touch sensor fabricated by solvent-free processing of graphite on cellulose paper , 2017 .
[99] Jian Yang,et al. Recent advances of microneedles for biomedical applications: drug delivery and beyond , 2019, Acta pharmaceutica Sinica. B.
[100] D. Erickson,et al. Smartphone based health accessory for colorimetric detection of biomarkers in sweat and saliva. , 2013, Lab on a chip.
[101] Peng Liu,et al. High-throughput in situ cell electroporation microsystem for parallel delivery of single guide RNAs into mammalian cells , 2017, Scientific Reports.
[102] Edmond Sabo,et al. Fear of injections in young adults: prevalence and associations. , 2003, The American journal of tropical medicine and hygiene.
[103] P. R. Miller,et al. Microneedle-based self-powered glucose sensor , 2014 .
[104] R. Potts,et al. Correlation between sweat glucose and blood glucose in subjects with diabetes. , 2012, Diabetes technology & therapeutics.
[105] Jeonghyun Kim,et al. Battery-free, skin-interfaced microfluidic/electronic systems for simultaneous electrochemical, colorimetric, and volumetric analysis of sweat , 2019, Science Advances.
[106] Samuel Babity,et al. Advances in the Design of Transdermal Microneedles for Diagnostic and Monitoring Applications. , 2018, Small.
[107] Mariana Medina-Sánchez,et al. Nanomaterials and lab-on-a-chip technologies. , 2012, Lab on a chip.
[108] A. Manz,et al. Miniaturized total chemical analysis systems: A novel concept for chemical sensing , 1990 .
[109] Franklin Bien,et al. Wearable smart sensor systems integrated on soft contact lenses for wireless ocular diagnostics , 2017, Nature Communications.
[110] Zhiyong Fan,et al. A Wearable Sweat Band for Noninvasive Levodopa Monitoring. , 2019, Nano letters.
[111] Jayoung Kim,et al. Wearable biosensors for healthcare monitoring , 2019, Nature Biotechnology.
[112] John A. Rogers,et al. Waterproof, electronics-enabled, epidermal microfluidic devices for sweat collection, biomarker analysis, and thermography in aquatic settings , 2019, Science Advances.
[113] P. V. Subramanyam,et al. ON MICRONEEDLES : AN EMERGING TRANSDERMAL DRUG DELIVERY SYSTEM , 2022 .
[114] Seok Hyun Yun,et al. Contact Lens Sensors in Ocular Diagnostics , 2015, Advanced healthcare materials.
[115] Huanyu Cheng,et al. Skin-interfaced microfluidic devices with one-opening chambers and hydrophobic valves for sweat collection and analysis. , 2020, Lab on a chip.
[116] T. Someya,et al. Stretchable, Large‐area Organic Electronics , 2010, Advanced materials.
[117] Victor J. Cadarso,et al. Integrated hollow microneedle-optofluidic biosensor for therapeutic drug monitoring in sub-nanoliter volumes , 2016, Scientific Reports.
[118] Xuezeng Zhao,et al. Measurement of cytokine biomarkers using an aptamer-based affinity graphene nanosensor on a flexible substrate toward wearable applications. , 2018, Nanoscale.
[119] Kun Dai,et al. The effect of filler dimensionality on the electromechanical performance of polydimethylsiloxane based conductive nanocomposites for flexible strain sensors , 2017 .
[120] Zhiyong Fan,et al. A Fully Integrated and Self-Powered Smartwatch for Continuous Sweat Glucose Monitoring. , 2019, ACS sensors.
[121] Ying Chen,et al. Nanostructured material-based biofuel cells: recent advances and future prospects. , 2017, Chemical Society reviews.
[122] Guang-Zhong Yang,et al. A wearable multisensing patch for continuous sweat monitoring. , 2017, Biosensors & bioelectronics.
[123] L Tian,et al. Wearable sensors: modalities, challenges, and prospects. , 2018, Lab on a chip.
[124] Ran Liu,et al. Multilayered pyramidal dissolving microneedle patches with flexible pedestals for improving effective drug delivery , 2017, Journal of controlled release : official journal of the Controlled Release Society.
[125] Guoliang Yuan,et al. Highly Stretchable, Ultrasensitive, and Wearable Strain Sensors Based on Facilely Prepared Reduced Graphene Oxide Woven Fabrics in an Ethanol Flame. , 2017, ACS applied materials & interfaces.
[126] Evgeny Katz,et al. Bicomponent Microneedle Array Biosensor for Minimally‐Invasive Glutamate Monitoring , 2011 .
[127] Sheng-Joue Young,et al. CO2 Gas Sensors Based on Carbon Nanotube Thin Films Using a Simple Transfer Method on Flexible Substrate , 2015, IEEE Sensors Journal.
[128] Ali Javey,et al. A Wearable Microfluidic Sensing Patch for Dynamic Sweat Secretion Analysis. , 2018, ACS sensors.
[129] Seung Yun Heo,et al. Miniaturized Flexible Electronic Systems with Wireless Power and Near‐Field Communication Capabilities , 2015 .
[130] Hye Rim Cho,et al. Wearable/disposable sweat-based glucose monitoring device with multistage transdermal drug delivery module , 2017, Science Advances.
[131] Yuhao Liu,et al. Lab-on-Skin: A Review of Flexible and Stretchable Electronics for Wearable Health Monitoring. , 2017, ACS nano.
[132] Weihua Huang,et al. Flexible Electrochemical Urea Sensor Based on Surface Molecularly Imprinted Nanotubes for Detection of Human Sweat. , 2018, Analytical chemistry.
[133] I. Karube,et al. Electrical conductivity of tear fluid in healthy persons and keratoconjunctivitis sicca patients measured by a flexible conductimetric sensor , 1996, Graefe's Archive for Clinical and Experimental Ophthalmology.
[134] Hui-wang Ai,et al. Development and Applications of Bioluminescent and Chemiluminescent Reporters and Biosensors. , 2019, Annual review of analytical chemistry.
[135] 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.
[136] Lei Wang,et al. Low melting point metal-based flexible 3D biomedical microelectrode array by phase transition method. , 2019, Materials science & engineering. C, Materials for biological applications.
[137] Yi Wang,et al. Wearable electrochemical biosensor based on molecularly imprinted Ag nanowires for noninvasive monitoring lactate in human sweat , 2020 .
[138] Vicky A Legrys,et al. Guidelines for diagnosis of cystic fibrosis in newborns through older adults: Cystic Fibrosis Foundation consensus report. , 2008, The Journal of pediatrics.
[139] Michael C. McAlpine,et al. Graphene-based wireless bacteria detection on tooth enamel , 2012, Nature Communications.
[140] Peng Chen,et al. A Swellable Microneedle Patch to Rapidly Extract Skin Interstitial Fluid for Timely Metabolic Analysis , 2017, Advanced materials.
[141] Martin Romantschuk,et al. Use of bioluminescent bacterial sensors as an alternative method for measuring heavy metals in soil extracts , 2002 .
[142] Pantelis Georgiou,et al. Towards a minimally invasive device for beta-lactam monitoring in humans. , 2017, Electrochemistry communications.
[143] Wang Luheng,et al. Influence of carbon black concentration on piezoresistivity for carbon-black-filled silicone rubber composite , 2009 .
[144] Yusuke Kuroki,et al. Mouthguard biosensor with telemetry system for monitoring of saliva glucose: A novel cavitas sensor. , 2016, Biosensors & bioelectronics.
[145] Peng Chen,et al. Transdermal Delivery of Anti‐Obesity Compounds to Subcutaneous Adipose Tissue with Polymeric Microneedle Patches , 2017 .
[146] Jian Zhang,et al. A Flexible Strain Sensor Based on the Porous Structure of a Carbon Black/Carbon Nanotube Conducting Network for Human Motion Detection , 2020, Sensors.
[147] Tian Jian Lu,et al. Recent Advances in Pen‐Based Writing Electronics and their Emerging Applications , 2016 .
[148] Elisa Michelini,et al. A portable bioluminescence engineered cell-based biosensor for on-site applications. , 2011, Biosensors & bioelectronics.
[149] Koichi Shibasaki,et al. Uric acid concentration in saliva and its changes with the patients receiving treatment for hyperuricemia , 2011, Metabolomics.
[150] Keng Wooi Ng,et al. Towards pain-free diagnosis of skin diseases through multiplexed microneedles: biomarker extraction and detection using a highly sensitive blotting method , 2015, Drug Delivery and Translational Research.
[151] R. Schasfoort,et al. TUTORIAL REVIEW , 2001 .
[152] Metin Sitti,et al. Recent Advances in Wearable Transdermal Delivery Systems , 2018, Advanced materials.
[153] Zhen Gu,et al. Stretch-Triggered Drug Delivery from Wearable Elastomer Films Containing Therapeutic Depots. , 2015, ACS nano.
[154] D. Beebe,et al. The present and future role of microfluidics in biomedical research , 2014, Nature.
[155] G. Fabbrocini,et al. Acne scarring treatment using skin needling , 2009, Clinical and experimental dermatology.
[156] Dermot Diamond,et al. A wearable electrochemical sensor for the real-time measurement of sweat sodium concentration , 2010 .
[157] Silvia Ghimenti,et al. Simultaneous determination of lactate and pyruvate in human sweat using reversed-phase high-performance liquid chromatography: a noninvasive approach. , 2012, Biomedical chromatography : BMC.
[158] S. Mukhopadhyay,et al. Strain induced graphite/PDMS sensors for biomedical applications , 2018 .
[159] John A Rogers,et al. Battery-free, lightweight, injectable microsystem for in vivo wireless pharmacology and optogenetics , 2019, Proceedings of the National Academy of Sciences.
[160] Liang Huang,et al. Microfluidics cell sample preparation for analysis: Advances in efficient cell enrichment and precise single cell capture. , 2017, Biomicrofluidics.
[161] Michael J. Buono,et al. The relationship between exercise intensity and the sweat lactate excretion rate , 2010, The Journal of Physiological Sciences.
[162] Claire M. Lochner,et al. All-organic optoelectronic sensor for pulse oximetry , 2014, Nature Communications.
[163] Ronen Polsky,et al. Multiplexed microneedle-based biosensor array for characterization of metabolic acidosis. , 2012, Talanta.
[164] John A Rogers,et al. Soft, skin-mounted microfluidic systems for measuring secretory fluidic pressures generated at the surface of the skin by eccrine sweat glands. , 2017, Lab on a chip.
[165] Feng Xu,et al. Liquid on Paper: Rapid Prototyping of Soft Functional Components for Paper Electronics , 2015, Scientific Reports.
[166] David L Kaplan,et al. Functional, RF‐Trilayer Sensors for Tooth‐Mounted, Wireless Monitoring of the Oral Cavity and Food Consumption , 2018, Advanced materials.
[167] Wenzhao Jia,et al. Epidermal biofuel cells: energy harvesting from human perspiration. , 2013, Angewandte Chemie.
[168] G. Whitesides. The origins and the future of microfluidics , 2006, Nature.
[169] Benjamin A. Katchman,et al. Accessing analytes in biofluids for peripheral biochemical monitoring , 2019, Nature Biotechnology.
[170] John A Rogers,et al. Battery-free, fully implantable optofluidic cuff system for wireless optogenetic and pharmacological neuromodulation of peripheral nerves , 2019, Science Advances.
[171] David J Beebe,et al. A passive pumping method for microfluidic devices. , 2002, Lab on a chip.
[172] Federico Tasca,et al. Microneedle-based electrochemical devices for transdermal biosensing: a review , 2019, Current Opinion in Electrochemistry.
[173] 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.
[174] Rui Tian,et al. Microneedle-array patches loaded with dual mineralized protein/peptide particles for type 2 diabetes therapy , 2017, Nature Communications.
[175] Paolo Bollella,et al. Microneedle-based biosensor for minimally-invasive lactate detection. , 2019, Biosensors & bioelectronics.
[176] T. Cramer,et al. Strain Mapping Inkjet-Printed Resistive Sensors Array , 2020, IEEE Sensors Journal.
[177] Alan S Campbell,et al. Wearable non-invasive epidermal glucose sensors: A review. , 2018, Talanta.
[178] Dennis Douroumis,et al. 3D printed microneedles for insulin skin delivery , 2018, International journal of pharmaceutics.
[179] Phillip Won,et al. A soft, wearable microfluidic device for the capture, storage, and colorimetric sensing of sweat , 2016, Science Translational Medicine.
[180] Stephen Lee,et al. Soft, skin-interfaced wearable systems for sports science and analytics , 2019, Current Opinion in Biomedical Engineering.
[181] Michelle L Rogers,et al. Development of a Minimally Invasive Microneedle-Based Sensor for Continuous Monitoring of β-Lactam Antibiotic Concentrations in Vivo. , 2019, ACS sensors.
[182] Joseph Wang,et al. Epidermal tattoo potentiometric sodium sensors with wireless signal transduction for continuous non-invasive sweat monitoring. , 2014, Biosensors & bioelectronics.
[183] Sheng Xu,et al. Soft, stretchable, high power density electronic skin-based biofuel cells for scavenging energy from human sweat , 2017 .
[184] Tyler R. Ray,et al. Soft, Skin‐Interfaced Microfluidic Systems with Passive Galvanic Stopwatches for Precise Chronometric Sampling of Sweat , 2019, Advanced materials.
[185] A. Salleo,et al. Wearable Organic Electrochemical Transistor Patch for Multiplexed Sensing of Calcium and Ammonium Ions from Human Perspiration , 2019, Advanced healthcare materials.
[186] Joshua Ray Windmiller,et al. Stamp transfer electrodes for electrochemical sensing on non-planar and oversized surfaces. , 2012, The Analyst.
[187] Timothy Bretl,et al. Large-area MRI-compatible epidermal electronic interfaces for prosthetic control and cognitive monitoring , 2019, Nature Biomedical Engineering.
[188] Alberto Salleo,et al. Molecularly selective nanoporous membrane-based wearable organic electrochemical device for noninvasive cortisol sensing , 2018, Science Advances.
[189] Mark R Prausnitz,et al. Minimally invasive extraction of dermal interstitial fluid for glucose monitoring using microneedles. , 2005, Diabetes technology & therapeutics.
[190] A. Roda,et al. Improved detection of toxic chemicals using bioluminescent bacteria , 2002 .
[191] Jan Larsen,et al. An Electronic Patch for Wearable Health Monitoring by Reflectance Pulse Oximetry , 2012, IEEE Transactions on Biomedical Circuits and Systems.
[192] Wei Gao,et al. Investigation of cortisol dynamics in human sweat using a graphene-based wireless mHealth system. , 2020, Matter.
[193] B. Liang,et al. An Integrated Paper-Based Microfluidic Device for Real-Time Sweat Potassium Monitoring , 2021, IEEE Sensors Journal.
[194] Ran Liu,et al. In vivo and in situ imaging of controlled‐release dissolving silk microneedles into the skin by optical coherence tomography , 2017, Journal of biophotonics.
[195] Sam Emaminejad,et al. Fully integrated wearable sensor arrays for multiplexed in situ perspiration analysis , 2016, Nature.
[196] Itthipon Jeerapan,et al. Stretchable Biofuel Cells as Wearable Textile-based Self-Powered Sensors. , 2016, Journal of materials chemistry. A.
[197] Limu Wang,et al. A simple method for fabricating multi-layer PDMS structures for 3D microfluidic chips. , 2010, Lab on a chip.
[198] Wei Li,et al. Long-acting reversible contraception by effervescent microneedle patch , 2019, Science Advances.
[199] J. Jang,et al. Highly sensitive, wearable and wireless pressure sensor using free-standing ZnO nanoneedle/PVDF hybrid thin film for heart rate monitoring , 2016 .
[200] Mehmet Turan,et al. Immunochromatographic Diagnostic Test Analysis Using Google Glass , 2014, ACS nano.
[201] Jung-Hwan Park,et al. Microneedles for drug and vaccine delivery. , 2012, Advanced drug delivery reviews.
[202] Stephan Harbarth,et al. Conserving antibiotics for the future: new ways to use old and new drugs from a pharmacokinetic and pharmacodynamic perspective. , 2011, Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy.
[203] Irsan,et al. Investigations on the Viscoelastic Performance of Pressure Sensitive Adhesives in Drug-in-Adhesive Type Transdermal Films , 2014, Pharmaceutical Research.
[204] Ali Javey,et al. Wearable sweat sensors , 2018 .