REFERENCES

1. Manjakkal, L.; Yin, L.; Nathan, A.; Wang, J.; Dahiya, R. Energy autonomous sweat-based wearable systems. Adv. Mater. 2021, 33, e2100899.

2. Karpova, E. V.; Karyakina, E. E.; Karyakin, A. A. Wearable non-invasive monitors of diabetes and hypoxia through continuous analysis of sweat. Talanta 2020, 215, 120922.

3. Bariya, M.; Nyein, H. Y. Y.; Javey, A. Wearable sweat sensors. Nat. Electron. 2018, 1, 160-71.

4. Sharma, A.; Badea, M.; Tiwari, S.; Marty, J. L. Wearable biosensors: an alternative and practical approach in healthcare and disease monitoring. Molecules 2021, 26, 748.

5. Smith, A. A.; Li, R.; Tse, Z. T. H. Reshaping healthcare with wearable biosensors. Sci. Rep. 2023, 13, 4998.

6. Xu, J.; Fang, Y.; Chen, J. Wearable biosensors for non-invasive sweat diagnostics. Biosensors 2021, 11, 245.

7. Song, Z.; Zhou, S.; Qin, Y.; et al. Flexible and wearable biosensors for monitoring health conditions. Biosensors 2023, 13, 630.

8. Vo, D. K.; Trinh, K. T. L. Advances in wearable biosensors for healthcare: current trends, applications, and future perspectives. Biosensors 2024, 14, 560.

9. Ghaffari, R.; Yang, D. S.; Kim, J.; et al. State of sweat: emerging wearable systems for real-time, noninvasive sweat sensing and analytics. ACS. Sens. 2021, 6, 2787-801.

10. Nonaka, T.; Wong, D. T. W. Saliva diagnostics. Annu. Rev. Anal. Chem. (Palo. Alto. Calif). 2022, 15, 107-21.

11. Song, M.; Bai, H.; Zhang, P.; Zhou, X.; Ying, B. Promising applications of human-derived saliva biomarker testing in clinical diagnostics. Int. J. Oral. Sci. 2023, 15, 2.

12. Ghelli, F.; Panizzolo, M.; Garzaro, G.; et al. Inflammatory biomarkers in exhaled breath condensate: a systematic review. Int. J. Mol. Sci. 2022, 23, 9820.

13. Szunerits, S.; Dӧrfler, H.; Pagneux, Q.; et al. Exhaled breath condensate as bioanalyte: from collection considerations to biomarker sensing. Anal. Bioanal. Chem. 2023, 415, 27-34.

14. Dos Santos, C. C.; Lucena, G. N.; Pinto, G. C.; Júnior, M. J.; Marques, R. F. Advances and current challenges in non‐invasive wearable sensors and wearable biosensors - a mini‐review. Med. Devices. Sens. 2020, 4, e10130.

15. Ma, C. B.; Shang, X.; Sun, M.; et al. Emerging multifunctional wearable sensors: integrating multimodal sweat analysis and advanced material technologies for next-generation health monitoring. ACS. Sens. 2025, 10, 2388-408.

16. Luo, D.; Sun, H.; Li, Q.; Niu, X.; He, Y.; Liu, H. Flexible sweat sensors: from films to textiles. ACS. Sens. 2023, 8, 465-81.

17. Pour, S. R. S.; Calabria, D.; Emamiamin, A.; et al. Microfluidic-based non-invasive wearable biosensors for real-time monitoring of sweat biomarkers. Biosensors 2024, 14, 29.

18. Xuan, X.; Pérez-Ràfols, C.; Chen, C.; Cuartero, M.; Crespo, G. A. Lactate biosensing for reliable on-body sweat analysis. ACS. Sens. 2021, 6, 2763-71.

19. Davis, N.; Heikenfeld, J.; Milla, C.; Javey, A. The challenges and promise of sweat sensing. Nat. Biotechnol. 2024, 42, 860-71.

20. Jo, S.; Sung, D.; Kim, S.; Koo, J. A review of wearable biosensors for sweat analysis. Biomed. Eng. Lett. 2021, 11, 117-29.

21. Yang, D. S.; Ghaffari, R.; Rogers, J. A. Sweat as a diagnostic biofluid. Science 2023, 379, 760-1.

22. Marvelli, A.; Campi, B.; Mergni, G.; et al. Sweat chloride assay by inductively coupled plasma mass spectrometry: a confirmation test for cystic fibrosis diagnosis. Anal. Bioanal. Chem. 2020, 412, 6909-16.

23. Aloke, C.; Egwu, C. O.; Aja, P. M.; et al. Current advances in the management of diabetes mellitus. Biomedicines 2022, 10, 2436.

24. Huang, T.; Liang, Z.; Wang, K.; Miao, X.; Zheng, L. Novel insights into athlete physical recovery concerning lactate metabolism, lactate clearance and fatigue monitoring: a comprehensive review. Front. Physiol. 2025, 16, 1459717.

25. Knezevic, E.; Nenic, K.; Milanovic, V.; Knezevic, N. N. The role of cortisol in chronic stress, neurodegenerative diseases, and psychological disorders. Cells 2023, 12, 2726.

26. Pulopulos, M. M.; Baeken, C.; De Raedt, R. Cortisol response to stress: The role of expectancy and anticipatory stress regulation. Horm. Behav. 2020, 117, 104587.

27. Ghaffari, R.; Rogers, J. A.; Ray, T. R. Recent progress, challenges, and opportunities for wearable biochemical sensors for sweat analysis. Sens. Actuators. B. Chem. 2021, 332, 129447.

28. Heng, W.; Yang, G.; Kim, W. S.; Xu, K. Emerging wearable flexible sensors for sweat analysis. Bio-des. Manuf. 2022, 5, 64-84.

29. Choi, D. H.; Kitchen, G. B.; Stewart, K. J.; Searson, P. C. The dynamic response of sweat chloride to changes in exercise load measured by a wearable sweat sensor. Sci. Rep. 2020, 10, 7699.

30. Lihong, Z.; Qiuping, L. Advancements and obstacles in sweat-based biosensors for health monitoring. Crit. Rev. Anal. Chem. 2025, 1-32.

31. Yu, H.; Sun, J. Sweat detection theory and fluid driven methods: a review. Nanotechnol. Precis. Eng. 2020, 3, 126-40.

32. Brasier, N.; Eckstein, J. Sweat as a source of next-generation digital biomarkers. Digit. Biomark. 2020, 3, 155-65.

33. Tang, Y.; Li, X.; Lv, H.; Wang, W.; Zhi, C.; Li, H. Integration designs toward new‐generation wearable energy supply‐sensor systems for real‐time health monitoring: a minireview. InfoMat 2020, 2, 1109-30.

34. Johnson, K. B.; Wei, W. Q.; Weeraratne, D.; et al. Precision medicine, AI, and the future of personalized health care. Clin. Transl. Sci. 2021, 14, 86-93.

35. Iqbal, S. M. A.; Mahgoub, I.; Du, E.; Leavitt, M. A.; Asghar, W. Advances in healthcare wearable devices. NPJ. Flex. Electron. 2021, 5, 9.

36. Hu, M.; Wang, Z.; Zhang, L.; Lin, S.; Liao, J. A microfluidic patch for wireless wearable electrochemical detection of sweat metabolites. Sens. Actuators. B. Chem. 2025, 422, 136604.

37. Bilbao, E.; Garate, O.; Rodríguez Campos, T.; et al. Electrochemical sweat sensors. Chemosensors 2023, 11, 244.

38. Liu, G.; Wang, H.; Zhang, P.; et al. A wearable multi-parameter electrochemical detection and signal processing system for real-time sweat analysis. Mikrochim. Acta. 2025, 192, 604.

39. Childs, A.; Mayol, B.; Lasalde-Ramírez, J. A.; Song, Y.; Sempionatto, J. R.; Gao, W. Diving into sweat: advances, challenges, and future directions in wearable sweat sensing. ACS. Nano. 2024, 18, 24605-16.

40. Gao, N.; Xu, G.; Chang, G.; Wu, Y. From lab to life: self-powered sweat sensors and their future in personal health monitoring. Adv. Sci. (Weinh). 2025, 12, e2409178.

41. Wang, X.; Shen, C.; Zhou, C.; Bu, Y.; Yan, X. Methods, principles and applications of optical detection of metal ios. Chem. Eng. J. 2021, 417, 129125.

42. Kumar, S.; Singh, R. Recent optical sensing technologies for the detection of various biomolecules: review. Opt. Laser. Technol. 2021, 134, 106620.

43. Wang, J.; Luo, Y.; Zhou, Z.; Xiao, J.; Xu, T.; Zhang, X. Epidermal wearable optical sensors for sweat monitoring. Commun. Mater. 2024, 5, 77.

44. Qin, J.; Jiang, S.; Wang, Z.; et al. Metasurface micro/nano-optical sensors: principles and applications. ACS. Nano. 2022, 16, 11598-618.

45. Min, J.; Tu, J.; Xu, C.; et al. Skin-interfaced wearable sweat sensors for precision medicine. Chem. Rev. 2023, 123, 5049-138.

46. Vasanth, A.; Ashok, A.; Do, T. N.; Phan, H. P. Advancements in flexible porous nanoarchitectonic materials for biosensing applications. Adv. Colloid. Interface. Sci. 2025, 339, 103439.

47. Ariati, R.; Sales, F.; Souza, A.; Lima, R. A.; Ribeiro, J. Polydimethylsiloxane composites characterization and its applications: a review. Polymers. (Basel). 2021, 13, 4258.

48. Teixeira, I.; Castro, I.; Carvalho, V.; et al. Polydimethylsiloxane mechanical properties: a systematic review. AIMS. Mater. Sci. 2021, 8, 952-73.

49. Choi, J.; Xue, Y.; Xia, W.; et al. Soft, skin-mounted microfluidic systems for measuring secretory fluidic pressures generated at the surface of the skin by eccrine sweat glands. Lab. Chip. 2017, 17, 2572-80.

50. 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.

51. Lima, R. A. The impact of polydimethylsiloxane (PDMS) in engineering: recent advances and applications. Fluids 2025, 10, 41.

52. Kan, X.; Shi, E.; Zhu, C.; Wang, Q.; Qu, L.; Dong, X. Binary solvent-induced ultra-adhesive gel for underwater motion and water flow detection. ACS. Appl. Polym. Mater. 2025, 7, 6523-32.

53. Qu, X.; Wang, Q.; Gan, D.; Sun, H.; Ni, Z.; Dong, X. Tissue-adaptable hydrogel for mechanically compliant bioelectronic interfaces. Nano. Lett. 2025, 25, 4759-66.

54. Hu, B.; Kang, X.; Xu, S.; Zhu, J.; Yang, L.; Jiang, C. Multiplex chroma response wearable hydrogel patch: visual monitoring of urea in body fluids for health prognosis. Anal. Chem. 2023, 95, 3587-95.

55. Wang, W.; Chen, Y.; Xiao, C.; et al. Flexible SERS wearable sensor based on nanocomposite hydrogel for detection of metabolites and pH in sweat. Chem. Eng. J. 2023, 474, 145953.

56. Sun, H.; Qu, X.; Wang, Q.; Guo, Y.; Dong, X. Dynamic regulation of interfacial adhesion in biomedical hydrogels. Chem. Soc. Rev. 2026, 55, 469-503.

57. Qu, X.; Wang, Q.; Sun, H.; et al. Molecular competition induced Janus hydrogel bioelectronic interface for electroceutical modulation. Nat. Commun. 2025, 17, 455.

58. Chao, F.; Cao, C.; Xu, Y.; et al. Sprayable hydrogel for pH-responsive nanozyme-derived bacteria-infected wound healing. ACS. Appl. Mater. Interfaces. 2025, 17, 5921-32.

59. Gan, D.; Wang, Q.; Zhang, X.; et al. Congeneric and robust adhesive epidermal patch for anti-interference physiological signal recognition. Adv. Funct. Mater. 2024, 34, 2411588.

60. Shao, Z.; Chen, H.; Wang, Q.; et al. Melt electrowriting ordered TPU microfibrous mesh for on-demand colorimetric wearable sweat detection. IEEE. Sensors. J. 2022, 22, 18560-6.

61. Sheng, F.; Zhao, C.; Zhang, B.; Tan, Y.; Dong, K. Flourishing electronic textiles towards pervasive, personalized and intelligent healthcare. Soft. Sci. 2024, 4, 2.

62. Hou, Z.; Liu, X.; Tian, M.; et al. Smart fibers and textiles for emerging clothe-based wearable electronics: materials, fabrications and applications. J. Mater. Chem. A. 2023, 11, 17336-72.

63. Zhang, Y.; Wang, H.; Lu, H.; Li, S.; Zhang, Y. Electronic fibers and textiles: recent progress and perspective. iScience 2021, 24, 102716.

64. Zhang, S.; Tan, R.; Xu, X.; Iqbal, S.; Hu, J. Fibers/textiles-based flexible sweat sensors: a review. ACS. Materials. Lett. 2023, 5, 1420-40.

65. Koh, E. H.; Lee, W. C.; Choi, Y. J.; et al. A wearable surface-enhanced raman scattering sensor for label-free molecular detection. ACS. Appl. Mater. Interfaces. 2021, 13, 3024-32.

66. Han, Y.; Fang, X.; Li, H.; Zha, L.; Guo, J.; Zhang, X. Sweat sensor based on wearable janus textiles for sweat collection and microstructured optical fiber for surface-enhanced raman scattering analysis. ACS. Sens. 2023, 8, 4774-81.

67. Mogera, U.; Guo, H.; Namkoong, M.; Rahman, M. S.; Nguyen, T.; Tian, L. Wearable plasmonic paper-based microfluidics for continuous sweat analysis. Sci. Adv. 2022, 8, eabn1736.

68. Khan, S. M.; Nassar, J. M.; Hussain, M. M. Paper as a substrate and an active material in paper electronics. ACS. Appl. Electron. Mater. 2020, 3, 30-52.

69. Eskandari, V.; Sahbafar, H.; Zeinalizad, L.; Marashipour, R.; Hadi, A. A review of paper-based substrates as surface-enhanced Raman spectroscopy (SERS) biosensors and microfluidic paper-based SERS platforms. J. Comput. Appl. Mech. 2022, 53, 142-56.

70. Chung, M.; Skinner, W. H.; Robert, C.; et al. Fabrication of a wearable flexible sweat pH sensor based on SERS-active Au/TPU electrospun nanofibers. ACS. Appl. Mater. Interfaces. 2021, 13, 51504-18.

71. Jeon, J.; Lee, S.; Chae, S.; et al. All-flexible chronoepifluidic nanoplasmonic patch for label-free metabolite profiling in sweat. Nat. Commun. 2025, 16, 8017.

72. Fan, F.; Chen, L.; Wang, Y.; et al. Damage-free dry transfer printing of ultrathin films with on-demand interfacial adhesion: principles and applications. Soft. Sci. 2025, 5, 52.

73. Chen, S.; Qiao, Z.; Niu, Y.; et al. Wearable flexible microfluidic sensing technologies. Nat. Rev. Bioeng. 2023, 1, 950-71.

74. Ayuso, J. M.; Virumbrales-Muñoz, M.; Lang, J. M.; Beebe, D. J. A role for microfluidic systems in precision medicine. Nat. Commun. 2022, 13, 3086.

75. Ray, T. R.; Choi, J.; Bandodkar, A. J.; et al. bio-integrated wearable systems: a comprehensive review. Chem. Rev. 2019, 119, 5461-533.

76. Baker, L. B.; Model, J. B.; Barnes, K. A.; et al. Skin-interfaced microfluidic system with personalized sweating rate and sweat chloride analytics for sports science applications. Sci. Adv. 2020, 6, eabe3929.

77. Vaquer, A.; Barón, E.; de la Rica, R. Wearable analytical platform with enzyme-modulated dynamic range for the simultaneous colorimetric detection of sweat volume and sweat biomarkers. ACS. Sens. 2021, 6, 130-6.

78. Villa, J. E. L.; Garcia, I.; Jimenez de Aberasturi, D.; Pavlov, V.; Sotomayor, M. D. P. T.; Liz-Marzán, L. M. SERS-based immunoassay for monitoring cortisol-related disorders. Biosens. Bioelectron. 2020, 165, 112418.

79. 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.

80. Li, H.; Ma, Y.; Huang, Y. Material innovation and mechanics design for substrates and encapsulation of flexible electronics: a review. Mater. Horiz. 2021, 8, 383-400.

81. Tu, J.; Yeom, J.; Ulloa, J. C.; et al. Stressomic: A wearable microfluidic biosensor for dynamic profiling of multiple stress hormones in sweat. Sci. Adv. 2025, 11, eadx6491.

82. Luo, Y.; Abidian, M. R.; Ahn, J. H.; et al. Technology roadmap for flexible sensors. ACS. Nano. 2023, 17, 5211-95.

83. Deng, M. Z.; Zhong, M. Y.; Li, M. L.; et al. Research progress on electrochemiluminescence nanomaterials and their applications in biosensors - a review. Anal. Chim. Acta. 2025, 1361, 344148.

84. Kim, J.; Oh, S.; Yang, D. S.; et al. A skin-interfaced, miniaturized platform for triggered induction, capture and colorimetric multicomponent analysis of microliter volumes of sweat. Biosens. Bioelectron. 2024, 253, 116166.

85. Liu, S.; Yang, D. S.; Wang, S.; et al. Soft, environmentally degradable microfluidic devices for measurement of sweat rate and total sweat loss and for colorimetric analysis of sweat biomarkers. EcoMat 2022, 5, e12270.

86. Liu, Z.; Li, J.; Li, J.; et al. Explainable deep-learning-assisted sweat assessment via a programmable colorimetric chip. Anal. Chem. 2022, 94, 15864-72.

87. Zheng, X. T.; Goh, W. P.; Yu, Y.; et al. Skin-attachable ink-dispenser-printed paper fluidic sensor patch for colorimetric sweat analysis. Adv. Healthc. Mater. 2024, 13, e2302173.

88. Cheng, Y.; Feng, S.; Ning, Q.; et al. Dual-signal readout paper-based wearable biosensor with a 3D origami structure for multiplexed analyte detection in sweat. Microsyst. Nanoeng. 2023, 9, 36.

89. Kim, J.; Wu, Y.; Luan, H.; et al. A skin-interfaced, miniaturized microfluidic analysis and delivery system for colorimetric measurements of nutrients in sweat and supply of vitamins through the skin. Adv. Sci. (Weinh). 2022, 9, e2103331.

90. Ghaffari, R.; Choi, J.; Raj, M. S.; et al. soft wearable systems for colorimetric and electrochemical analysis of biofluids. Adv. Funct. Mater. 2019, 30, 1907269.

91. Xi, P.; He, X.; Fan, C.; et al. Smart Janus fabrics for one-way sweat sampling and skin-friendly colorimetric detection. Talanta 2023, 259, 124507.

92. Kwon, K.; Kim, J. U.; Deng, Y.; et al. An on-skin platform for wireless monitoring of flow rate, cumulative loss and temperature of sweat in real time. Nat. Electron. 2021, 4, 302-12.

93. Sung, D.; Han, S.; Kim, S.; et al. Electrophoretic digital colorimetry integrated with electrochemical sweat sensor. Sci. Adv. 2025, 11, eadu2142.

94. Gui, X.; Xie, J.; Wang, W.; et al. Wearable and flexible nanoporous surface-enhanced raman scattering substrates for sweat enrichment and analysis. ACS. Appl. Nano. Mater. 2023, 6, 11049-60.

95. Li, G.; Fan, X.; Tang, X.; et al. Challenges and prospects of personalized healthcare based on surface-enhanced Raman spectroscopy. Research. (Wash. D. C). 2024, 7, 0572.

96. Liu, X.; Ma, J.; Jiang, P.; et al. Large-scale flexible surface-enhanced Raman scattering (SERS) sensors with high stability and signal homogeneity. ACS. Appl. Mater. Interfaces. 2020, 12, 45332-41.

97. Xie, L.; Zeng, H.; Zhu, J.; et al. State of the art in flexible SERS sensors toward label-free and onsite detection: from design to applications. Nano. Res. 2022, 15, 4374-94.

98. Laing, S.; Sloan-Dennison, S.; Faulds, K.; Graham, D. Surface enhanced Raman scattering for biomolecular sensing in human healthcare monitoring. ACS. Nano. 2025, 19, 8381-400.

99. He, X.; Fan, C.; Luo, Y.; Xu, T.; Zhang, X. Flexible microfluidic nanoplasmonic sensors for refreshable and portable recognition of sweat biochemical fingerprint. NPJ. Flex. Electron. 2022, 6, 60.

100. Lee, G. H.; Moon, H.; Kim, H.; et al. Multifunctional materials for implantable and wearable photonic healthcare devices. Nat. Rev. Mater. 2020, 5, 149-65.

101. Shin, Y.; Teresa Gutierrez-wing, M.; Choi, J. Review - recent progress in portable fluorescence sensors. J. Electrochem. Soc. 2021, 168, 017502.

102. Sekine, Y.; Kim, S. B.; Zhang, Y.; et al. A fluorometric skin-interfaced microfluidic device and smartphone imaging module for in situ quantitative analysis of sweat chemistry. Lab. Chip. 2018, 18, 2178-86.

103. Cho, S. H.; Cho, S.; Lv, Z.; et al. Soft, wearable, microfluidic system for fluorometric analysis of loss of amino acids through eccrine sweat. Lab. Chip. 2025, 25, 1647-55.

104. Cui, Y.; Duan, W.; Jin, Y.; Wo, F.; Xi, F.; Wu, J. Ratiometric fluorescent nanohybrid for noninvasive and visual monitoring of sweat glucose. ACS. Sens. 2020, 5, 2096-105.

105. Chen, Q.; Li, S.; Tu, X.; Zhang, X. Skin-attachable Tb-MOF ratio fluorescent sensor for real-time detection of human sweat pH. Biosens. Bioelectron. 2024, 263, 116606.

106. Chen, M. M.; Cheng, S. B.; Ji, K.; et al. Construction of a flexible electrochemiluminescence platform for sweat detection. Chem. Sci. 2019, 10, 6295-303.

107. Ma, X.; Gao, W.; Du, F.; et al. Rational design of electrochemiluminescent devices. Acc. Chem. Res. 2021, 54, 2936-45.

108. Chen, Y.; Chen, J.; Luo, Y.; et al. Stretchable photonic crystal-enhanced ECL for sweat neurotransmitter detection. Anal. Chem. 2025, 97, 19525-31.

109. Ferraraccio, L. S.; Bertoncello, P. Electrochemiluminescence (ECL) biosensor based on tris(2,2'-bipyridyl)ruthenium(II) with glucose and lactate dehydrogenases encapsulated within alginate hydrogels. Bioelectrochemistry 2023, 150, 108365.

110. Cai, X.; Yan, J.; Chu, H.; Wu, M.; Tu, Y. An exercise degree monitoring biosensor based on electrochemiluminescent detection of lactate in sweat. Sens. Actuators. B. Chem. 2010, 143, 655-9.

111. Hu, Y.; Li, J.; Liu, J.; Yu, X.; Yang, J.; Li, Y. A simple yet multifunctional sensing platform inspired by healing-assembly hydrogels serving motion and sweat monitoring. Sens. Actuators. B. Chem. 2023, 378, 133173.

112. Sun, Y.; Li, P.; Zhu, Y.; et al. In situ growth of TiO2 nanowires on Ti3C2 MXenes nanosheets as highly sensitive luminol electrochemiluminescent nanoplatform for glucose detection in fruits, sweat and serum samples. Biosens. Bioelectron. 2021, 194, 113600.

113. Kwon, D. K.; Myoung, J. M. Wearable and semitransparent pressure-sensitive light-emitting sensor based on electrochemiluminescence. ACS. Nano. 2020, 14, 8716-23.

114. Gomez, D. Fibre optic humidity and pH sensing for healthcare and sports applications. Sens. Actuators. B. Chem. 2018, 254, 887-95. https://eprints.nottingham.ac.uk/55406/ (accessed 2026-2-27).

115. Duarah, R.; Torné-Morató, H.; Zhang, G.; et al. Next-generation wearable optical sensors for personalized health and point-of-care diagnostics-a systematic review. Adv. Healthc. Mater. 2026, e04419.

116. Zhang, H.; Chen, S.; Fan, X.; et al. The fiber optic SPR cholesterol biosensor based on electroless silver plating film. Optics. . Laser. Technol. 2025, 192, 113907.

117. Lei, Y.; Gong, Z.; Li, Y.; et al. Highly Sensitive physiological sensor based on tapered fiber-optic interferometer for sweat pH detection. IEEE. Sensors. J. 2023, 23, 11627-34.

118. Karipbayeva, K.; Blanc, W.; Tosi, D. Optical fiber semi-distributed interferometer assisted by an FBG for thermorefractometry and sweat sensing. IEEE. Sensors. J. 2023, 23, 14161-6.

119. Tu, D.; Tang, Y.; Huang, Y.; et al. Next-generation wearable/implanted sensors based on fiber optic and its application: from in vitro to in vivo. ACS. Sens. 2025, 10, 3818-39.

120. Zhang, Z.; Li, K.; Li, Y.; Zhang, Q.; Wang, H.; Hou, C. Dual-function wearable hydrogel optical fiber for monitoring posture and sweat pH. ACS. Sens. 2024, 9, 3413-22.

121. Wang, R.; Yang, X.; Tian, F.; et al. Highly sensitive and rapid Raman detection of lactic acid in human sweat based on reflective tapered optical fiber. Optics. Laser. Technol. 2025, 188, 112975.

122. Xiang, L.; Zeng, X.; Xia, F.; Jin, W.; Liu, Y.; Hu, Y. Recent advances in flexible and stretchable sensing systems: from the perspective of system integration. ACS. Nano. 2020, 14, 6449-69.

123. Yang, Y.; Gao, W. Wearable and flexible electronics for continuous molecular monitoring. Chem. Soc. Rev. 2019, 48, 1465-91.

124. Wang, D.; Xu, G.; Zhang, X.; et al. Dual-functional ultrathin wearable 3D particle-in-cavity SF-AAO-Au SERS sensors for effective sweat glucose and lab-on-glove pesticide detection. Sens. Actuators. B. Chem. 2022, 359, 131512.

125. Kim, H. S.; Kim, H. J.; Lee, J.; et al. Hand-held Raman spectrometer-based dual detection of creatinine and cortisol in human sweat using silver nanoflakes. Anal. Chem. 2021, 93, 14996-5004.

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