Page 50 - Read Online
P. 50
Yun et al. Soft Sci 2023;3:12 https://dx.doi.org/10.20517/ss.2023.04 Page 21 of 23
2017;27:1604373. DOI
64. Xu H, Liu J, Zhang J, Zhou G, Luo N, Zhao N. Flexible organic/inorganic hybrid near-infrared photoplethysmogram sensor for
cardiovascular monitoring. Adv Mater 2017;29:1700975. DOI
65. Kang MH, Lee GJ, Yun JH, Song YM. NFC-based wearable optoelectronics working with smartphone application for untact
healthcare. Sensors 2021;21:878. DOI PubMed PMC
66. Webb RC, Bonifas AP, Behnaz A, et al. Ultrathin conformal devices for precise and continuous thermal characterization of human
skin. Nat Mater 2013;12:938-44. DOI
67. Dankoco M, Tesfay G, Benevent E, Bendahan M. Temperature sensor realized by inkjet printing process on flexible substrate. Mater
Sci Eng B 2016;205:1-5. DOI
68. Wu J, Wu Z, Xu H, et al. An intrinsically stretchable humidity sensor based on anti-drying, self-healing and transparent
organohydrogels. Mater Horiz 2019;6:595-603. DOI
69. Lan L, Le X, Dong H, Xie J, Ying Y, Ping J. One-step and large-scale fabrication of flexible and wearable humidity sensor based on
laser-induced graphene for real-time tracking of plant transpiration at bio-interface. Biosens Bioelectron 2020;165:112360. DOI
70. Lu Y, Xu K, Zhang L, et al. Multimodal plant healthcare flexible sensor system. ACS Nano 2020;14:10966-75. DOI
71. Soni M, Bhattacharjee M, Ntagios M, Dahiya R. Printed temperature sensor based on PEDOT: PSS-graphene oxide composite. IEEE
Sensors J 2020;20:7525-31. DOI
72. Wang YF, Sekine T, Takeda Y, et al. Fully printed PEDOT: PSS-based temperature sensor with high humidity stability for wireless
healthcare monitoring. Sci Rep 2020;10:2467. DOI PubMed PMC
73. Pi C, Yu X, Chen W, et al. A reversible and fast-responsive humidity sensor based on a lead-free Cs TeCl double perovskite. Mater
2 6
Adv 2021;2:1043-9. DOI
74. Villarejo MV, Zapirain BG, Zorrilla AM. A stress sensor based on Galvanic Skin Response (GSR) controlled by ZigBee. Sensors
2012;12:6075-101. DOI PubMed PMC
75. Kurniawan H, Maslov AV, Pechenizkiy M. Stress detection from speech and galvanic skin response signals. In Proceedings of the
26th IEEE International Symposium on Computer-Based Medical Systems; 20-22 June 2013; Porto: Portugal; 2013. DOI
76. Seoane F, Mohino-Herranz I, Ferreira J, et al. Wearable biomedical measurement systems for assessment of mental stress of
combatants in real time. Sensors 2014;14:7120-41. DOI PubMed PMC
77. Kim H, Kim YS, Mahmood M, et al. Fully integrated, stretchable, wireless skin-conformal bioelectronics for continuous stress
monitoring in daily life. Adv Sci 2020;7:2000810. DOI PubMed PMC
78. Koh A, Kang D, Xue Y, et al. A soft, wearable microfluidic device for the capture, storage, and colorimetric sensing of sweat. Sci
Transl Med 2016;8:366ra165. DOI
79. Choi J, Kang D, Han S, Kim SB, Rogers JA. Thin, soft, skin-mounted microfluidic networks with capillary bursting valves for
chrono-sampling of sweat. Adv Healthc Mater 2017;6:1601355. DOI
80. Ardalan S, Hosseinifard M, Vosough M, Golmohammadi H. Towards smart personalized perspiration analysis: an IoT-integrated
cellulose-based microfluidic wearable patch for smartphone fluorimetric multi-sensing of sweat biomarkers. Biosens Bioelectron
2020;168:112450. DOI PubMed
81. Baker LB, Model JB, Barnes KA, et al. Skin-interfaced microfluidic system with personalized sweating rate and sweat chloride
analytics for sports science applications. Sci Adv 2020:6. DOI PubMed PMC
82. Li S, Ma Z, Cao Z, Pan L, Shi Y. Advanced wearable microfluidic sensors for healthcare monitoring. Small 2020;16:e1903822. DOI
PubMed
83. Padash M, Enz C, Carrara S. Microfluidics by additive manufacturing for wearable biosensors: a review. Sensors 2020;20:4236. DOI
PubMed PMC
84. Song Y, Min J, Yu Y, et al. Wireless battery-free wearable sweat sensor powered by human motion. Sci Adv 2020:6. DOI PubMed
PMC
85. Smith DS, Alzina A, Bourret J, et al. Thermal conductivity of porous materials. J Mater Res 2013;28:2260-72. DOI
86. Zhang X, Chao X, Lou L, et al. Personal thermal management by thermally conductive composites: a review. Compos Commun
2021;23:100595. DOI
87. Pola T, Häkkinen T, Hännikäinen J, Vanhala J. Thermal performance analysis of 13 heat sink materials suitable for wearable
electronics applications. Sci Technol 2013;3:67-73. DOI
88. Candadai AA, Nadler EJ, Burke JS, Weibel JA, Marconnet AM. Thermal and mechanical characterization of high performance
polymer fabrics for applications in wearable devices. Sci Rep 2021;11:8705. DOI PubMed PMC
89. Hardy JD, Dubois EF. Regulation of heat loss from the human body. Proc Natl Acad Sci USA 1937;23:624-31. DOI PubMed PMC
90. Voelker C, Hoffmann S, Kornadt O, Arens E, Zhang H, Huizenga C. Heat and moisture transfer through clothing. Available from:
https://escholarship.org/uc/item/8qk6h840 [Last accessed on 13 Apr 2023].
91. Ko JH, Kim DH, Hong SH, Kim SK, Song YM. Polarization-driven thermal emission regulator based on self-aligned GST
nanocolumns. iScience 2023;26:105780. DOI PubMed PMC
92. Seo DH, Heo S, Kim DH, Song YM, Lee GJ. Spatially-segmented colored radiative cooler with angle-robustness. IEEE Photonics J
2022;14:1-6. DOI
93. Kim DH, Lee GJ, Heo SY, et al. Ultra-thin and near-unity selective emitter for efficient cooling. Opt Express 2021;29:31364-75.
DOI

