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Na et al. Soft Sci. 2026, 6, 25                                                  Page 21 of 22





               77.  Hou, Y. X.; Li, Y.; Zhang, Z. C.; et al. Large-scale and flexible optical synapses for neuromorphic computing and integrated visible
                  information sensing memory processing. ACS. Nano. 2021, 15, 1497-508. DOI PubMed
               78.  Li, D.; Chen, Y.; Ren, H.; et al. An active-matrix synaptic phototransistor array for in-sensor spectral processing. Adv. Sci. 2024, 11,
                  e2406401. DOI PubMed PMC
               79.  Li, X.; Fang, Z.; Guo, X.; et al. Light-induced conductance potentiation and depression in an all-optically controlled memristor. ACS.
                  Appl. Mater. Interfaces. 2024, 16, 27866-74. DOI PubMed
               80.  Jiang, J.; Shan, X.; Xu, J.; et al. Retina-like chlorophyll heterojunction-based optoelectronic memristor with all-optically modulated
                  synaptic plasticity enabling neuromorphic edge detection. Adv. Funct. Mater. 2024, 34, 2409677. DOI
               81.  Xie, J.; Shan, X.; Zou, N.; et al. All-optically controlled memristive device based on Cu 2 O/TiO 2  heterostructure toward neuromorphic
                  visual system. Research 2025, 8, 0580. DOI PubMed PMC
               82.  Peng, X.; Huang, S.; Jiang, H.; Lu, A.; Yu, S. DNN+NeuroSim V2. 0: an end-to-end benchmarking framework for compute-in-memory
                  accelerators for on-chip training. IEEE. Trans. Comput.-Aided. Des. Integr. Circuits. Syst. 2021, 40, 2306-19. DOI
               83.  Chen, P. Y.; Peng, X.; Yu, S. NeuroSim+: an integrated device-to-algorithm framework for benchmarking synaptic devices and array
                  architectures. 2017. IEEE. International. Electron. Devices. Meeting. (IEDM). 2017, 6.1.1-6.1.4. DOI
               84.  Xia, L.; Li, B.; Tang, T.; Gu, P.; Chen, P. Y.; Yu, S. MNSIM: simulation platform for memristor-based neuromorphic computing system.
                  IEEE. Trans. Comput.-Aided. Des. Integr. Circuits. Syst. 2018, 37, 1009-22. DOI
               85.  Turak, A. Interfacial degradation in organic optoelectronics. RSC. Adv. 2013, 3, 6188-225. DOI
               86.  Reese, M. O.; Nardes, A. M.; Rupert, B. L.; et al. Photoinduced degradation of polymer and polymer-fullerene active layers: experiment
                  and theory. Adv. Funct. Mater. 2010, 20, 3476-83. DOI
               87.  Gao, Z. M., Song, G. S., Zhang, X. M.; et al. A facile PDMS coating approach to room-temperature gas sensors with high humidity
                  resistance and long-term stability. Sens. Actuators. B:. Chem. 2020, 325, 128810. DOI
               88.  Liu, X.; Xu, Y.; Ben, K.; Chen, C.; Wang, Y.; Guan, Z. Transparent, durable and thermally stable PDMS-derived superhydrophobic
                  surfaces. Appl. Surf. Sci. 2015, 339, 94-101. DOI
               89.  Kim, Y.; Baek, J. H.; Im, I. H.; Lee, D. H.; Park, M. H.; Jang, H. W. Two-terminal neuromorphic devices for spiking neural networks:
                  neurons, synapses, and array integration. ACS. Nano. 2024, 18, 34531-71. DOI PubMed
               90.  Kim, S.; Lim, M.; Kim, Y.; Kim, H. D.; Choi, S. J. Impact of synaptic device variations on pattern recognition accuracy in a hardware
                  neural network. Sci. Rep. 2018, 8, 2638. DOI PubMed PMC
               91.  Wan, Q.; Sharbati, M. T.; Erickson, J. R.; Du, Y.; Xiong, F. Emerging artificial synaptic devices for neuromorphic computing. Adv.
                  Mater. Technol. 2019, 4, 1900037. DOI
               92.  Bai, J.; Liao, L.; Zhou, H.; et al. Top-gated chemical vapor deposition grown graphene transistors with current saturation. Nano. Lett.
                  2011, 11, 2555-9. DOI PubMed PMC
               93.  Liu, B.; Chen, L.; Liu, G.; Abbas, A. N.; Fathi, M.; Zhou, C. High-performance chemical sensing using Schottky-contacted chemical
                  vapor deposition grown monolayer MoS 2  transistors. ACS. Nano. 2014, 8, 5304-14. DOI PubMed
               94.  Ma, H.; Jen, A. K. Y.; Dalton, L. R. Polymer-based optical waveguides: materials, processing, and devices. Adv. Mater. 2002, 14,
                  1339-65. DOI
               95.  Zhang, Y.; Wen, D.; Liu, M.; et al. Stretchable PDMS encapsulation via SiO 2  doping and atomic layer infiltration for flexible displays.
                  Adv. Mater. Interfaces. 2022, 9, 2101857. DOI
               96.  Bao, R.; Wang, S.; Liu, X.; et al. Neuromorphic electro-stimulation based on atomically thin semiconductor for damage-free
                  inflammation inhibition. Nat. Commun. 2024, 15, 1327. DOI PubMed PMC
               97.  Kang, J.; Lim, Y. W.; Lee, I.; et al. Photopatternable poly(dimethylsiloxane) (PDMS) for an intrinsically stretchable organic
                  electrochemical transistor. ACS. Appl. Mater. Interfaces. 2022, 14, 24840-9. DOI PubMed
               98.  Kim, J. H.; Park, J. W. Foldable transparent substrates with embedded electrodes for flexible electronics. ACS. Appl. Mater. Interfaces.
                  2015, 7, 18574-80. DOI PubMed
               99.  Milanovich, M.; Sarkar, T.; Popowski, Y.; et al. Enhancing P3HT/PCBM blend stability by thermal crosslinking using
                  poly(3-hexylthiophene)-S,S-dioxide. J. Mater. Chem. C. 2020, 8, 7698-707. DOI
               100. Xu, J.; Wang, S.; Wang, G. N.; et al. Highly stretchable polymer semiconductor films through the nanoconfinement effect. Science 2017,
                  355, 59-64. DOI PubMed
               101. Wang, Y.; Chen, K. L.; Prine, N.; Rondeau-Gagné, S.; Chiu, Y. C.; Gu, X. Stretchable and self-healable semiconductive composites
                  based on hydrogen bonding cross-linked elastomeric matrix. Adv. Funct. Mater. 2023, 33, 2303031. DOI
               102. Park, H.; Na, M.; Shin, D.; et al. A skin-friendly soft strain sensor with direct skin adhesion enabled by using a non-toxic surfactant. J.
                  Mater. Chem. C. 2023, 11, 9611-9. DOI
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