13 IoT Based Wearable Healthcare System: Post COVID-19
319
24. Emaminejad S et al (2017) Autonomous sweat extraction and analysis applied to cystic
fibrosis and glucose monitoring using a fully integrated wearable platform. Proc Natl Acad
Sci 114:4625–4630
25. Green AA, Dodds P, Pennock C (1985) A study of sweat sodium and chloride; criteria for the
diagnosis of cystic fibrosis. Ann Clin Biochem 22:71–176
26. Takei K, Gao W, Wang C, Javey A (2019) Physical and chemical sensing with electronic skin.
Proc IEEE 107:2155–2167
27. Tai L-C et al (2018) Methylxanthine drug monitoring with wearable sweat sensors. Adv Mater
30:1707442
28. Chun KY, Oh Y, Rho J, Ahn JH, Kim YJ, Choi HR (2010) Highly conductive, printable and
stretchable composite films of carbon nanotubes and silver. Nat Nanotechnol 5:853–857
29. Xu F, Zhu Y (2012) Highly conductive and stretchable silver nanowire conductors. Adv Mater
24(37):5117–5122
30. Yao S, Zhu Y (2015) Nanomaterial-enabled stretchable conductors: strategies, materials and
devices. Adv Mater 27:1480–1511
31. Sekitani T, Noguchi Y, Hata K, Fukushima T, Aida T, Someya T (2008) A rubberlike stretchable
active matrix using elastic conductors. Science 321:1468–1472
32. Fan F-R, Tian Z-Q, Wang ZL (2012) Flexibletriboelectric generator. Nano Energy 1:328
33. Lin Z, Chen J, Li X, Zhou Z, Meng K, Wei W, Yang J, Wang ZL (2017) Triboelectric nanogenerator enabled body sensor network for self-powered human heart-rate monitoring. ACS
Nano 11:8830
34. Park DY et al (2017) Self-powered real-time arterial pulse monitoring using ultrathin epidermal
piezoelectric sensors. Adv Mater 29:1702308
35. Park S et al (2018) Self-powered ultra-flexible electronics via nano-grating-patterned organic
photovoltaics. Nature 561:516–521
36. Yun et al J (2018) Stretchable array of high-performance micro-supercapacitors charged with
solar cells for wireless powering of an integrated strain sensor. Nano Energy 49:644
37. Wang R, Mu L, Bao Y, Lin H, Ji T, Shi Y, Zhu J, Wu W (2020) Holistically engineered
polymer–polymer and polymer–ion interactions in biocompatible polyvinyl alcohol blends for
high-performance triboelectric devices in self-powered wearable cardiovascular monitorings.
Adv Mater. https://doi.org/10.1002/adma.202002878. Accessed 28 June 2020
38. Noh S, Yoon C, Hun E, Yoon HN, Chung TJ, Par KS, Kim HC (2014) Ferroelectret film-based
patch-type sensor for continuous blood pressure monitoring. Electron Lett 50:143–144
39. Luo N, Dai W, Li C, Zhou Z, Lu L, Poon XCY, Chen S, Zhang Y, Zhao N (2016) Flexible
piezoresistive sensor patch enabling ultralow power cuffless blood pressure measurement. Adv
Funct Mater 26:1178–1187
40. Wang C et al (2018) Monitoring of the central blood pressure waveform via a conformal
ultrasonic device. Nat Biomed Eng 2:687–695
41. Huang X et al (2014) Stretchable, wireless sensors and functional substrates for epidermal
characterization of sweat. Small 10:3083–3090
42. Kim J et al (2018) Simultaneous monitoring of sweat and interstitial fluid using a single
wearable biosensor platform. Adv Sci 5:1800880
43. Alizadeh A et al (2018) A wearable patch for continuous monitoring of sweat electrolytes
during exertion. Lab Chip 18:2632–2641
44. Anastasova S, Crewther B, Bembnowicz P, Curto V, Ip HM, Rosa B, Yang GZ (2017) A wearable
multisensing patch for continuous sweat monitoring. Biosens Bioelectron 93:139–145
45. Oh SY et al (2018) Skin-attachable, stretchable electrochemical sweat sensor for glucose and
pH detection. ACS Appl Mater Interfaces 10:13729–13740
46. Cho E, Mohammadifar M, Choi S (2017) A single-use, self-powered, paper-based sensor patch
for detection of exercise-induced hypoglycemia. Micromachines 8:265
47. Lee S, Son I, Choi J, Nam D, Hong Y, Lee W (2011) Estimated blood pressure algorithm for
a wrist-wearable pulsimeter using hall device. J Korean Phys Soc 58:349–352
48. Hsu Y, Young DJ (2013) Skin-surface-coupled personal health monitoring system. In:
Proceedings of the 2013 IEEE sensors, Baltimore, MD, USA, 4–6 Nov 2013, pp 1–4
319
24. Emaminejad S et al (2017) Autonomous sweat extraction and analysis applied to cystic
fibrosis and glucose monitoring using a fully integrated wearable platform. Proc Natl Acad
Sci 114:4625–4630
25. Green AA, Dodds P, Pennock C (1985) A study of sweat sodium and chloride; criteria for the
diagnosis of cystic fibrosis. Ann Clin Biochem 22:71–176
26. Takei K, Gao W, Wang C, Javey A (2019) Physical and chemical sensing with electronic skin.
Proc IEEE 107:2155–2167
27. Tai L-C et al (2018) Methylxanthine drug monitoring with wearable sweat sensors. Adv Mater
30:1707442
28. Chun KY, Oh Y, Rho J, Ahn JH, Kim YJ, Choi HR (2010) Highly conductive, printable and
stretchable composite films of carbon nanotubes and silver. Nat Nanotechnol 5:853–857
29. Xu F, Zhu Y (2012) Highly conductive and stretchable silver nanowire conductors. Adv Mater
24(37):5117–5122
30. Yao S, Zhu Y (2015) Nanomaterial-enabled stretchable conductors: strategies, materials and
devices. Adv Mater 27:1480–1511
31. Sekitani T, Noguchi Y, Hata K, Fukushima T, Aida T, Someya T (2008) A rubberlike stretchable
active matrix using elastic conductors. Science 321:1468–1472
32. Fan F-R, Tian Z-Q, Wang ZL (2012) Flexibletriboelectric generator. Nano Energy 1:328
33. Lin Z, Chen J, Li X, Zhou Z, Meng K, Wei W, Yang J, Wang ZL (2017) Triboelectric nanogenerator enabled body sensor network for self-powered human heart-rate monitoring. ACS
Nano 11:8830
34. Park DY et al (2017) Self-powered real-time arterial pulse monitoring using ultrathin epidermal
piezoelectric sensors. Adv Mater 29:1702308
35. Park S et al (2018) Self-powered ultra-flexible electronics via nano-grating-patterned organic
photovoltaics. Nature 561:516–521
36. Yun et al J (2018) Stretchable array of high-performance micro-supercapacitors charged with
solar cells for wireless powering of an integrated strain sensor. Nano Energy 49:644
37. Wang R, Mu L, Bao Y, Lin H, Ji T, Shi Y, Zhu J, Wu W (2020) Holistically engineered
polymer–polymer and polymer–ion interactions in biocompatible polyvinyl alcohol blends for
high-performance triboelectric devices in self-powered wearable cardiovascular monitorings.
Adv Mater. https://doi.org/10.1002/adma.202002878. Accessed 28 June 2020
38. Noh S, Yoon C, Hun E, Yoon HN, Chung TJ, Par KS, Kim HC (2014) Ferroelectret film-based
patch-type sensor for continuous blood pressure monitoring. Electron Lett 50:143–144
39. Luo N, Dai W, Li C, Zhou Z, Lu L, Poon XCY, Chen S, Zhang Y, Zhao N (2016) Flexible
piezoresistive sensor patch enabling ultralow power cuffless blood pressure measurement. Adv
Funct Mater 26:1178–1187
40. Wang C et al (2018) Monitoring of the central blood pressure waveform via a conformal
ultrasonic device. Nat Biomed Eng 2:687–695
41. Huang X et al (2014) Stretchable, wireless sensors and functional substrates for epidermal
characterization of sweat. Small 10:3083–3090
42. Kim J et al (2018) Simultaneous monitoring of sweat and interstitial fluid using a single
wearable biosensor platform. Adv Sci 5:1800880
43. Alizadeh A et al (2018) A wearable patch for continuous monitoring of sweat electrolytes
during exertion. Lab Chip 18:2632–2641
44. Anastasova S, Crewther B, Bembnowicz P, Curto V, Ip HM, Rosa B, Yang GZ (2017) A wearable
multisensing patch for continuous sweat monitoring. Biosens Bioelectron 93:139–145
45. Oh SY et al (2018) Skin-attachable, stretchable electrochemical sweat sensor for glucose and
pH detection. ACS Appl Mater Interfaces 10:13729–13740
46. Cho E, Mohammadifar M, Choi S (2017) A single-use, self-powered, paper-based sensor patch
for detection of exercise-induced hypoglycemia. Micromachines 8:265
47. Lee S, Son I, Choi J, Nam D, Hong Y, Lee W (2011) Estimated blood pressure algorithm for
a wrist-wearable pulsimeter using hall device. J Korean Phys Soc 58:349–352
48. Hsu Y, Young DJ (2013) Skin-surface-coupled personal health monitoring system. In:
Proceedings of the 2013 IEEE sensors, Baltimore, MD, USA, 4–6 Nov 2013, pp 1–4
