Page 86 - Read Online
P. 86

Page 18 of 22                                                         Na et al. Soft Sci. 2026, 6, 25





               Not applicable.

               Copyright
               © The Author(s) 2026.

               REFERENCES

               1.  Jang, H.; Lee, J.; Beak, C. J.; Biswas, S.; Lee, S. H.; Kim, H. Flexible neuromorphic electronics for wearable near-sensor and in-sensor
                  computing systems. Adv. Mater. 2025, 37, e2416073. DOI PubMed
               2.  Shi, Q.; Dong, B.; He, T.; et al. Progress in wearable electronics/photonics—moving toward the era of artificial intelligence and internet
                  of things. InfoMat 2020, 2, 1131-62. DOI
               3.  Kim, S. H.; Baek, G. W.; Yoon, J.; et al. A bioinspired stretchable sensory-neuromorphic system. Adv. Mater. 2021, 33, e2104690. DOI
                  PubMed
               4.  Linh, V. T. N.; Han, S.; Koh, E.; Kim, S.; Jung, H. S.; Koo, J. Advances in wearable electronics for monitoring human organs: bridging
                  external and internal health assessments. Biomaterials 2025, 314, 122865. DOI PubMed
               5.  Gu, Y.; Zhang, T.; Chen, H.; et al. Mini review on flexible and wearable electronics for monitoring human health information.
                  Nanoscale. Res. Lett. 2019, 14, 263. DOI PubMed PMC
               6.  Kim, H.; Kim, D.; Kim, J.; et al. Advances and perspectives in fiber-based electronic devices for next-generation soft systems. npj. Flex.
                  Electron. 2025, 9, 84. DOI
               7.  Pan, S.; Wu, S.; Ming, J.; Ling, H. Toward energy-efficient machine vision: advances in optoelectronic memristors. Adv. Opt. Mater.
                  2025, 13, e01992. DOI
               8.  Yao, P.; Wu, H.; Gao, B.; et al. Fully hardware-implemented memristor convolutional neural network. Nature 2020, 577, 641-6. DOI
                  PubMed
               9.  Schuman, C. D.; Kulkarni, S. R.; Parsa, M.; Mitchell, J. P.; Date, P.; Kay, B. Opportunities for neuromorphic computing algorithms and
                  applications. Nat. Comput. Sci. 2022, 2, 10-9. DOI PubMed
               10.  Shim, H.; Sim, K.; Ershad, F.; et al. Stretchable elastic synaptic transistors for neurologically integrated soft engineering systems. Sci.
                  Adv. 2019, 5, eaax4961. DOI PubMed PMC
               11.  Upadhyay, N. K.; Jiang, H.; Wang, Z.; Asapu, S.; Xia, Q.; Joshua Yang, J. Emerging memory devices for neuromorphic computing. Adv.
                  Mater. Technol. 2019, 4, 1800589. DOI
               12.  Lee, J. W.; Han, J.; Kang, B.; Hong, Y. J.; Lee, S.; Jeon, I. Strategic development of memristors for neuromorphic systems: low-power
                  and reconfigurable operation. Adv. Mater. 2025, 37, 2413916. DOI PubMed
               13.  Zhang, J.; Dai, S.; Zhao, Y.; Zhang, J.; Huang, J. Recent progress in photonic synapses for neuromorphic systems. Adv. Intell. Syst. 2020,
                  2, 1900136. DOI
               14.  Chen, X.; Chen, B.; Jiang, B.; et al. Nanowires for UV-vis-IR optoelectronic synaptic devices. Adv. Funct. Mater. 2023, 33, 2208807.
                  DOI
               15.  Sun, Y.; Ding, Y.; Xie, D. Mixed-dimensional van der Waals heterostructures enabled optoelectronic synaptic devices for neuromorphic
                  applications. Adv. Funct. Mater. 2021, 31, 2105625. DOI
               16.  Lee, J.; Jeong, B. H.; Kamaraj, E.; et al. Light-enhanced molecular polarity enabling multispectral color-cognitive memristor for
                  neuromorphic visual system. Nat. Commun. 2023, 14, 5775. DOI PubMed PMC
               17.  Jiang, T.; Wang, Y.; Huang, W.; et al. Retina-inspired organic neuromorphic vision sensor with polarity modulation for decoding light
                  information. Light. Sci. Appl. 2023, 12, 264. DOI PubMed PMC
               18.  Ahmed, T.; Tahir, M.; Low, M. X.; et al. Fully light-controlled memory and neuromorphic computation in layered black phosphorus.
                  Adv. Mater. 2021, 33, 2004207. DOI PubMed
               19.  Jiang, T.; Wang, Y.; Zheng, Y.; et al. Tetrachromatic vision-inspired neuromorphic sensors with ultraweak ultraviolet detection. Nat.
                  Commun. 2023, 14, 2281. DOI PubMed PMC
               20.  Ren, Q.; Zhu, C.; Ma, S.; et al. Optoelectronic devices for in-sensor computing. Adv. Mater. 2025, 37, 2407476. DOI PubMed PMC
               21.  Wang, J.; Ilyas, N.; Ren, Y.; et al. Technology and integration roadmap for optoelectronic memristor. Adv. Mater. 2024, 36, 2307393.
                  DOI PubMed
               22.  Shim, S.; Kim, S.; Lee, D.; et al. Infrared-triggered retinomorphic artificial synapse electronic device containing multi-dimensional van
                  der Waals heterojunctions. Small 2025, 21, 2410892. DOI PubMed PMC
               23.  Park, H.; Kim, D.; Kim, S.; Na, M.; Kim, Y.; Sim, K. Chemically and physically enhanced adhesion for robust interfaces in all-soft
                  vertical organic photodetectors. Chem. Commun. 2024, 60, 9262-5. DOI PubMed
               24.  Lan, L.; Huang, B.; Li, Y.; et al. Stretchable optoelectronic synapses with ultraviolet to near-infrared perception for retina-inspired
                  computing and vision-adaptive sensing. npj. Flex. Electron. 2025, 9, 16. DOI
   81   82   83   84   85   86   87   88   89   90   91