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Articles

Recent progress on the wearable devices based on piezoelectric sensors

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Pages 102-113 | Received 24 Oct 2017, Accepted 22 Mar 2018, Published online: 20 Nov 2018

References

  • S. L. Syme, Preventing disease and promoting health: the need for some new thinking, Soz-Präventivmed. 51(5), 247 (2006).
  • R. L. Siegel, K. D. Miller, and A. Jemal, Cancer statistics, 2016. CA cancer, Ca-a Cancer Journal for Clinicians. 66(1), 7 (2016).
  • M. Guarnieri, and J. R. Balmes, Outdoor air pollution and asthma, Lancet 383(9928), 1581 (2014).
  • M. Acer, M. Salerno, K. Agbeviade, and J. Paik, Development and characterization of silicone embedded distributed piezoelectric sensors for contact detection, Smart Mater. Struct. 24(7), 075030 (2015).
  • J. Danesh, et al., C-reactive protein and other circulating markers of inflammation in the prediction of coronary heart disease, N Engl. J. Med. 350(14), 1387 (2004).
  • F. R. Fan, W. Tang, and Z. L. Wang, Flexible nanogenerators for energy harvesting and self-powered electronics, Adv. Mater. Weinheim. 28(22), 4283 (2016).
  • A. Ibrahim, T. Hisham, and O. Yuu, Development of wearable and flexible ultrasonic sensor for skeletal muscle monitoring, IEEE Int. Ultrason. Symp., 1129 (2013).
  • Y. Qi, et al., Piezoelectric ribbons printed onto rubber for flexible energy conversion. Nano Lett. 10(2), 524 (2010).
  • K. Jeonghun, et al., Research update: hybrid energy devices combining nanogenerators and energy storage systems for self-charging capability, APL Mater. 5(7), 073804 (2017).
  • N. R. Alluri, et al., Piezoelectric BaTi/alginate spherical composite beads for energy harvesting and self-powered wearable flexion sensor, Composites Sci Technol 142, 65 (2017).
  • M. Zhang, et al., A hybrid fibers based wearable fabric piezoelectric nanogenerator for energy harvesting application, Nano Energy 13, 298 (2015).
  • A. Jain, et al., Dielectric and piezoelectric properties of PVDF/PZT composites: a review, Polym. Eng. Sci. 55(7), 1589 (2015).
  • M. Meddad, et al., Model of piezoelectric self-powered supply for wearable devices, Superlattices Microstruct. 71, 105 (2014).
  • P. G. Kang, et al., Piezoelectric power generation of vertically aligned lead-free (K,Na)Nbnanorod arrays, RSC Advances 4(56), 29799 (2014).
  • M. R. Joung, et al., Piezoelectric nanogenerators synthesized using KNbnanowires with various crystal structures, J. Mater. Chem. A 2(43), 18547 (2014).
  • Z. Wang, et al., (Na)Nb nanofiber-based self-powered sensors for accurate detection of dynamic strain, Acs Appl. Mater. Interfaces 7(8), 4921 (2015).
  • S. Y. Chung, H. J. Lee, I. Tae, and Y. S. Kim, A wearable piezoelectric bending motion sensor for simultaneous detection of bending curvature and speed, RSC Adv. 7(5), 2520 (2017).
  • J. J. Wang, H. J. Su, C. I. Hsu, and Y. C. Su, Composite piezoelectric rubber band for energy harvesting from breathing and limb motion, J. Phys: Conf. Ser. 557, 012022 (2014).
  • Y. Xin, et al., Wearable and unconstrained systems based on PVDF sensors in physiological signals monitoring: a brief review, Ferroelectrics 500(1), 291 (2016).
  • D. Mozaffarian, Dietary and policy priorities for cardiovascular disease, diabetes, and obesity: a comprehensive review, Circulation 133(2), 187 (2016).
  • S. S. Salvi, and P. J. Barnes, Chronic obstructive pulmonary disease in non-smokers, Lancet 374(9691), 733 (2009).
  • M. Decramer, and Y. Sibille, European conference on chronic respiratory disease, Lancet 377(9760), 104 (2011).
  • T. A. R. Seemungal, et al., Effect of exacerbation on quality of life in patients with chronic obstructive pulmonary disease, Am. J. Respir. Crit. Care Med. 157(5), 1418 (1998).
  • A. J. Bandodkar, I. Jeerapan, and J. Wang, Wearable chemical sensors: present challenges and future prospects, ACS Sens. 1(5), 464 (2016).
  • F. A. Wichmann, and N. J. Hill, The psychometric function: I. Fitting, sampling, and goodness of fit, Percept. Psychophys. 63(8), 1293 (2001).
  • S. Patel, et al., A review of wearable sensors and systems with application in rehabilitation, J. Neuroengineering Rehabil. 9(1), 21 (2012).
  • R. G. Multhaupt, et al., Porous PTFE space-charge electrets for piezoelectric applications, Transactions on Dielectrics and Electrical Insulation 7(4), 480 (2000).
  • H. Booyens, J. S. Vermaak, and G. R. Proto, Dislocations and piezoelectric effect in 3-5 crystals, J. Appl. Phys. 48(7), 3008 (1977).
  • H. H. Hu, et al., A finger-shaped tactile sensor for fabric surfaces evaluation by 2-dimensional active sliding touch, Sensors 14(3), 4899 (2014).
  • S. Yahud, S. Dokos, J. W. Morley, and N. H. Lovell, Experimental validation of a polyvinylidene fluoride sensing element in a tactile sensor, IEEE Eng. Med. Biol. Soc. Conf., 5760 (2010).
  • C. Akitegetse, C. Volat, and M. Farzaneh, Measuring bending stress on an ice/aluminium composite beam interface using an embedded piezoelectric PVDF (polyvinylidene-fluoride) film sensor, Meas. Sci. Technol. 19(6), 065703 (2008).
  • A. Song, Y. Z. Han, H. H. Hu, and J. Q. Li, A novel texture sensor for fabric texture measurement and classification, IEEE Trans. Instrum. Meas. 63(7), 1739 (2014).
  • D. Justine Ina, and A. D. Struthers. Pulse wave analysis and pulse wave velocity: a critical review of their strengths and weaknesses. J. Hypertens. 21(3), 463 (2003).
  • D. Normile, Asian medicine. The new face of traditional Chinese medicine, Science 299(5604), 188 (2003).
  • F. Q. Meng, H. C. Luo, and U. Halbreich, Concepts, techniques, and clinical applications of acupuncture, Psychiatr. Ann. 32(1), 45 (2002).
  • T. T. Yang, et al., A wearable and highly sensitive graphene strain sensor for precise home-based pulse wave monitoring, ACS Sens. 2(7), 967 (2017).
  • D. Y. Park, et al., Self-powered real-time arterial pulse monitoring using ultrathin epidermal piezoelectric sensors, Adv. Mater. 29(37), 1702308 (2017).
  • S. P. Patil, H. Schneider, A. R. Schwartz, and P. L. Smith, Adult obstructive sleep apnea: pathophysiology and diagnosis, Chest 132(1), 325 (2007).
  • D. L. Keller, To the Editor: Obstructive sleep apnea, Cleve. Clin. J. Med. 83(10), 703 (2016).
  • S. Nadarajah, et al., Corneal hysteresis is reduced in obstructive sleep apnea syndrome, Optom. Visi. Sci. 94(10), 981 (2017).
  • K. Niizeki, I. Nishidate, K. Uchida, and M. Kuwahar, Unconstrained cardiorespiratory and body movement monitoring system for home care, Med. Biol. Eng. Comput. 43(6), 716 (2005).
  • S. J. Choi, and Z. W. Jiang, A novel wearable sensor device with conductive fabric and PVDF film for monitoring cardiorespiratory signals, Sens. Actuators A-Phys. 128(2), 317 (2006).
  • G. R. Manjunatha, et al., Polyvinylidene fluoride film based nasal sensor to monitor human respiration pattern: An initial clinical study, J. Clin. Monit. Comput. 27(6), 647 (2013).
  • I. Mahbub, et al., A low-power wireless piezoelectric sensor-based respiration monitoring system realized in CMOS process, IEEE Sens. J. 17(6), 1858 (2017).
  • A. Lanata, E. P. Scilingo, and D. De. Rossi, A multimodal transducer for cardiopulmonary activity monitoring in emergency, IEEE Trans. Inform. Technol. Biomed. 14(3), 817 (2010).
  • Y. Xin, et al., A novel unconstrained cardiorespiratory monitoring system during sleep, Integr. Ferroelectr. 176(1), 63 (2016).
  • B. Tondu, Modelling of the McKibben artificial muscle: a review, J Intel. Mater. Sys. Struct. 23(3), 225 (2012).
  • N. Bu, et al., Measuring muscle movements for human interfaces using a flexible piezoelectric thin film sensor. IEEE Eng. Med. Biol. Soc. Conf. 112–116 (2008).
  • I. AlMohimeed, H. Turkistani, and Y. Ono. Development of wearable and flexible ultrasonic sensor for skeletal muscle monitoring. IEEE Inter. Ultrason. Symp. 2013, 1129–1132 (2013).
  • S. K. Ghosh, and D. Mandal, Sustainable energy generation from piezoelectric biomaterial for noninvasive physiological signal monitoring, ACS Sustainable Chem. Eng. 5, 8836–8843 (2017).
  • C. S. Ricardo, et al., Obesity and hypertension, J. Clin. Hypertens. 15(1), (2013).
  • D. E. Wilfley, M. B. Schwartz, E. B. Spurrell, and C. G. Fairburn, Using the eating disorder examination to identify the specific psychopathology of binge eating disorder, Int. J. Eat. Disord. 27(3), 259 (2000).
  • M. Farooq, and E. Sazonov, A novel wearable device for food intake and physical activity recognition, Sensors 16(7), 1067 (2016).
  • H. Kalantarian, N. N. Alshurafa, T. Le, and M. Sarrafzadeh, Monitoring eating habits using a piezoelectric sensor-based necklace, Comput. Biol. Med. 58, 46 (2015).

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