REFERENCES

1. Niu X, Gao X, Liu Y, Liu H. Surface bioelectric dry electrodes: a review. Measurement 2021;183:109774.

2. Zhu M, Wang H, Li S, et al. Flexible electrodes for in vivo and in vitro electrophysiological signal recording. Adv Healthc Mater 2021;10:e2100646.

3. Eskandarian L, Toossi A, Nassif F, et al. 3D-knit dry electrodes using conductive elastomeric fibers for long-term continuous electrophysiological monitoring. Adv Materials Technologies 2022;7:2101572.

4. Carneiro MR, Majidi C, Tavakoli M. Multi-electrode printed bioelectronic patches for long-term electrophysiological monitoring. Adv Funct Materials 2022;32:2205956.

5. Wang Y, Haick H, Guo S, et al. Skin bioelectronics towards long-term, continuous health monitoring. Chem Soc Rev 2022;51:3759-93.

6. Zhao H, Su R, Teng L, et al. Recent advances in flexible and wearable sensors for monitoring chemical molecules. Nanoscale 2022;14:1653-69.

7. Chen H, Dejace L, Lacour SP. Electronic skins for healthcare monitoring and smart prostheses. Annu Rev Control Robot Auton Syst 2021;4:629-50.

8. Lyu Q, Gong S, Yin J, Dyson JM, Cheng W. Soft wearable healthcare materials and devices. Adv Healthc Mater 2021;10:e2100577.

9. Kim H, Kim E, Choi C, Yeo WH. Advances in soft and dry electrodes for wearable health monitoring devices. Micromachines 2022;13:629.

10. Li Z, Guo W, Huang Y, Zhu K, Yi H, Wu H. On-skin graphene electrodes for large area electrophysiological monitoring and human-machine interfaces. Carbon 2020;164:164-70.

11. Wu H, Yang G, Zhu K, et al. Materials, devices, and systems of on-skin electrodes for electrophysiological monitoring and human-machine interfaces. Adv Sci 2021;8:2001938.

12. Tian G, Yang D, Liang C, et al. A nonswelling hydrogel with regenerable high wet tissue adhesion for bioelectronics. Adv Mater 2023;35:e2212302.

13. Yang L, Liu Q, Zhang Z, Gan L, Zhang Y, Wu J. Materials for dry electrodes for the electroencephalography: advances, challenges, perspectives. Adv Materials Technologies 2022;7:2100612.

14. Liu Q, Yang L, Zhang Z, Yang H, Zhang Y, Wu J. The feature, performance, and prospect of advanced electrodes for electroencephalogram. Biosensors 2023;13:101.

15. Li G, Wang S, Duan YY. Towards conductive-gel-free electrodes: understanding the wet electrode, semi-dry electrode and dry electrode-skin interface impedance using electrochemical impedance spectroscopy fitting. Sensor Actuat B-Chem 2018;277:250-60.

16. Yuan H, Li Y, Yang J, et al. State of the art of non-invasive electrode materials for brain-computer interface. Micromachines 2021;12:1521.

17. Fu Y, Zhao J, Dong Y, Wang X. Dry electrodes for human bioelectrical signal monitoring. Sensors 2020;20:3651.

18. Asl SN, Oehler M, Schilling M. Noise model of capacitive and textile capacitive noncontact electrodes for bioelectric applications. IEEE Trans Biomed Circuits Syst 2018;12:851-9.

19. Ren L, Liu B, Zhou W, Jiang L. A mini review of microneedle array electrode for bio-signal recording: a review. IEEE Sensors J 2020;20:577-90.

20. Wang Y, Jiang L, Ren L, et al. Towards improving the quality of electrophysiological signal recordings by using microneedle electrode arrays. IEEE Trans Biomed Eng 2021;68:3327-35.

21. Yang JC, Mun J, Kwon SY, Park S, Bao Z, Park S. Electronic skin: recent progress and future prospects for skin-attachable devices for health monitoring, robotics, and prosthetics. Adv Mater 2019;31:e1904765.

22. Ren L, Chen Z, Wang H, Dou Z, Liu B, Jiang L. Fabrication of bendable microneedle-array electrode by magnetorheological drawing lithography for electroencephalogram recording. IEEE Trans Instrum Meas 2020;69:8328-34.

23. Huang D, Li J, Li T, Wang Z, Wang Q, Li Z. Recent advances on fabrication of microneedles on the flexible substrate. J Micromech Microeng 2021;31:073001.

24. Li J, Ma Y, Huang D, et al. High-performance flexible microneedle array as a low-impedance surface biopotential dry electrode for wearable electrophysiological recording and polysomnography. Nanomicro Lett 2022;14:132.

25. Hou Y, Li Z, Wang Z, Yu H. Miura-ori structured flexible microneedle array electrode for biosignal recording. Microsyst Nanoeng 2021;7:53.

26. Li Y, Zhou W, Liu C, et al. Fabrication and characteristic of flexible dry bioelectrodes with microstructures inspired by golden margined century plant leaf. Sensor Actuat A-Phys 2021;321:112397.

27. Niu X, Wang L, Li H, Wang T, Liu H, He Y. Fructus xanthii-inspired low dynamic noise dry bioelectrodes for surface monitoring of ECG. ACS Appl Mater Interfaces 2022;14:6028-38.

28. Zhang L, Kumar KS, He H, et al. Fully organic compliant dry electrodes self-adhesive to skin for long-term motion-robust epidermal biopotential monitoring. Nat Commun 2020;11:4683.

29. Cao J, Yang X, Rao J, et al. Stretchable and self-adhesive pedot:pss blend with high sweat tolerance as conformal biopotential dry electrodes. ACS Appl Mater Interfaces 2022;14:39159-71.

30. Park T, Jeong J, Kim YJ, Yoo H. Weak molecular interactions in organic composite dry film lead to degradable, robust wireless electrophysiological signal sensing. Adv Materials Inter 2022;9:2200594.

31. Li Q, Chen G, Cui Y, et al. Highly thermal-wet comfortable and conformal silk-based electrodes for on-skin sensors with sweat tolerance. ACS Nano 2021;15:9955-66.

32. Zhang S, Sharifuzzamn M, Rana SMS, et al. Highly conductive, stretchable, durable, skin-conformal dry electrodes based on thermoplastic elastomer-embedded 3D porous graphene for multifunctional wearable bioelectronics. Nano Res 2023;16:7627-37.

33. Fan W, Zhong Z, Tian G, Wang Y, Gong G, Qi D. Application of Conductive Polymer in Nerve Interface Electrode. Chem J Chin Univ 2021;42:1146-55.

34. Yun G, Tang SY, Sun S, et al. Liquid metal-filled magnetorheological elastomer with positive piezoconductivity. Nat Commun 2019;10:1300.

35. Zhang J, Liu M, Pearce G, et al. Strain stiffening and positive piezoconductive effect of liquid metal/elastomer soft composites. Compos Sci Technol 2021;201:108497.

36. Niu Y, Tian G, Liang C, et al. Thermal-sinterable egain nanoparticle inks for highly deformable bioelectrode arrays. Adv Healthc Mater 2023;12:e2202531.

37. Pei D, Yu S, Liu P, et al. Reversible wet-adhesive and self-healing conductive composite elastomer of liquid metal. Adv Funct Materials 2022;32:2204257.

38. Shi C, Hu F, Wu R, et al. New silk road: from mesoscopic reconstruction/functionalization to flexible meso-electronics/photonics based on cocoon silk materials. Adv Mater 2021;33:e2005910.

39. Hu M, Zhang J, Liu Y, et al. Highly conformal polymers for ambulatory electrophysiological sensing. Macromol Rapid Commun 2022;43:e2200047.

40. Yang H, Ji S, Chaturvedi I, et al. Adhesive biocomposite electrodes on sweaty skin for long-term continuous electrophysiological monitoring. ACS Materials Lett 2020;2:478-84.

41. Meng L, Fu Q, Hao S, Xu F, Yang J. Self-adhesive, biodegradable silk-based dry electrodes for epidermal electrophysiological monitoring. Chem Eng J 2022;427:131999.

42. Zhao Y, Zhang S, Yu T, et al. Ultra-conformal skin electrodes with synergistically enhanced conductivity for long-time and low-motion artifact epidermal electrophysiology. Nat Commun 2021;12:4880.

43. Cheng Y, Zhou Y, Wang R, et al. An elastic and damage-tolerant dry epidermal patch with robust skin adhesion for bioelectronic interfacing. ACS Nano 2022;16:18608-20.

44. Tang W, Zhou Y, Chen S, et al. Delamination-resistant imperceptible bioelectrode for robust electrophysiological signals monitoring. ACS Materials Lett 2021;3:1385-93.

45. Jiang Z, Chen N, Yi Z, et al. A 1.3-micrometre-thick elastic conductor for seamless on-skin and implantable sensors. Nat Electron 2022;5:784-93.

46. Yao S, Zhou W, Hinson R, et al. Ultrasoft porous 3d conductive dry electrodes for electrophysiological sensing and myoelectric control. Adv Mater Technol 2022;7:2101637.

47. Pei Z, Zhang Q, Li Q, et al. A fully 3D printed electronic skin with bionic high resolution and air permeable porous structure. J Colloid Interface Sci 2021;602:452-8.

48. Tian Q, Zhao H, Zhou R, et al. Ultrapermeable and wet-adhesive monolayer porous film for stretchable epidermal electrode. ACS Appl Mater Interfaces 2022;14:52535-43.

49. Xie R, Li Q, Teng L, et al. Strenuous exercise-tolerance stretchable dry electrodes for continuous multi-channel electrophysiological monitoring. npj Flex Electron 2022;6:75.

50. Yu L, Lu L, Zhou X, Xu L. Current understanding of the wettability of mxenes. Adv Materials Inter 2023;10:2201818.

51. Song D, Ye G, Zhao Y, Zhang Y, Hou X, Liu N. An all-in-one, bioderived, air-permeable, and sweat-stable mxene epidermal electrode for muscle theranostics. ACS Nano 2022;16:17168-78.

52. Liu H, Zhong X, He X, et al. Stretchable conductive fabric enabled by surface functionalization of commercial knitted cloth. ACS Appl Mater Interfaces 2021;13:55656-65.

53. Zhang Y, Zhang T, Huang Z, Yang J. A new class of electronic devices based on flexible porous substrates. Adv Sci 2022;9:e2105084.

54. Jeong W, Park Y, Gwon G, et al. All-organic, solution-processed, extremely conformal, mechanically biocompatible, and breathable epidermal electrodes. ACS Appl Mater Interfaces 2021;13:5660-7.

55. Yan X, Chen S, Zhang G, et al. Highly breathable, surface-hydrophobic and wet-adhesive silk based epidermal electrode for long-term electrophysiological monitoring. Compos Sci Technol 2022;230:109751.

56. Zhao Q, Zhu M, Tian G, et al. Highly sensitive and omnidirectionally stretchable bioelectrode arrays for in vivo neural interfacing. Adv Healthc Mater 2023:e2203344.

57. Xing X, Wang Y, Pei W, et al. A high-speed SSVEP-Based BCI using dry EEG electrodes. Sci Rep 2018;8:14708.

58. Liu J, Liu X, He E, et al. A novel dry-contact electrode for measuring electroencephalography signals. Sensor Actuat A-Phys 2019;294:73-80.

59. Niu X, Gao X, Wang T, Wang W, Liu H. Ordered nanopillar arrays of low dynamic noise dry bioelectrodes for electrocardiogram surface monitoring. ACS Appl Mater Interfaces 2022;14:33861-70.

60. Ye G, Qiu J, Fang X, et al. A Lamellibranchia-inspired epidermal electrode for electrophysiology. Mater Horiz 2021;8:1047-57.

61. Dong J, Peng Y, Wang D, et al. Quasi-homogeneous and hierarchical electronic textiles with porosity-hydrophilicity dual-gradient for unidirectional sweat transport, electrophysiological monitoring, and body-temperature visualization. Small 2023;19:e2206572.

62. Stauffer F, Thielen M, Sauter C, et al. Skin conformal polymer electrodes for clinical ecg and eeg recordings. Adv Healthc Mater 2018;7:e1700994.

63. Kim DW, Baik S, Min H, et al. Highly permeable skin patch with conductive hierarchical architectures inspired by amphibians and octopi for omnidirectionally enhanced wet adhesion. Adv Funct Mater 2019;29:1807614.

64. Min H, Baik S, Kim J, et al. Tough carbon nanotube-implanted bioinspired three-dimensional electrical adhesive for isotropically stretchable water-repellent bioelectronics. Adv Funct Materials 2022;32:2107285.

65. Li P, Bao Y, Chen B, et al. A bioinspired sweat-drainable janus electrophysiological electrode for scientific sports training. Adv Materials Technologies 2022;7:2200040.

66. Yang D, Tian G, Liang C, et al. Double-microcrack coupling stretchable neural electrode for electrophysiological communication. Adv Funct Mater 2023;33:2300412.

67. Chen B, Kang W, Sun J, et al. Programmable living assembly of materials by bacterial adhesion. Nat Chem Biol 2022;18:289-94.

68. He K, Liu Z, Wan C, et al. An on-skin electrode with anti-epidermal-surface-lipid function based on a zwitterionic polymer brush. Adv Mater 2020;32:e2001130.

69. Huang Y, Yang F, Liu S, Wang R, Guo J, Ma X. Liquid metal-based epidermal flexible sensor for wireless breath monitoring and diagnosis enabled by highly sensitive SnS2 nanosheets. Research 2021;2021:9847285.

70. Wang X, Feng Z, Zhang G, et al. Flexible sensors array based on frosted microstructured ecoflex film and tpu nanofibers for epidermal pulse wave monitoring. Sensors 2023;23:3717.

71. Zou X, Xue J, Li X, et al. High-fidelity sEMG signals recorded by an on-skin electrode based on AgNWs for hand gesture classification using machine learning. ACS Appl Mater Interfaces 2023;15:19374-83.

72. Dong P, Song Y, Yu S, et al. Electromyogram-based lip-reading via unobtrusive dry electrodes and machine learning methods. Small 2023;19:e2205058.

73. Alizadeh-Meghrazi M, Sidhu G, Jain S, et al. A mass-producible washable smart garment with embedded textile emg electrodes for control of myoelectric prostheses: a pilot study. Sensors 2022;22:666.

74. Cui T, Qiao Y, Li D, et al. Multifunctional, breathable MXene-PU mesh electronic skin for wearable intelligent 12-lead ECG monitoring system. Chem Eng J 2023;455:140690.

75. Wan C, Wu Z, Ren M, et al. In situ formation of conductive epidermal electrodes using a fully integrated flexible system and injectable photocurable ink. ACS Nano 2023;17:10689-700.

76. Zhang X, Mo X, Li C, et al. A wearable master–slave rehabilitation robot based on an epidermal array electrode sleeve and multichannel electromyography network. Adv Intell Syst-Ger 2023;5:2200313.

77. Parak J, Salonen M, Myllymäki T, Korhonen I. Comparison of heart rate monitoring accuracy between chest strap and vest during physical training and implications on training decisions. Sensors 2021;21:8411.

78. Chun S, Kim S, Kim J. Human arm workout classification by arm sleeve device based on machine learning algorithms. Sensors 2023;23:3106.

79. Liu Y, Cheng Y, Shi L, Wang R, Sun J. Breathable, self-adhesive dry electrodes for stable electrophysiological signal monitoring during exercise. ACS Appl Mater Interfaces 2022;14:12812-23.

80. Liang C, Sun J, Liu Z, et al. Wide range strain distributions on the electrode for highly sensitive flexible tactile sensor with low hysteresis. ACS Appl Mater Interfaces 2023;15:15096-107.

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