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Published on: February 27, 2019
Helicity-Defined Analog Conductance States in Chiral Perovskite Synapses
Min Jong Lee1, Hyoungwook Cho1, Sang Heon Lee1
1School of Electrical Engineering, Korea University, Seoul, Republic of Korea.
Abstract:
Optoelectronic synapses encode light through scalar variables (i.e., intensity or wavelength), leaving inputs that differ only in field symmetry indistinguishable at the hardware level. Circularly polarized light introduces helicity as a symmetry-defined degree of freedom; however, the conversion into persistent analog memory remains challenging. This study demonstrates that optical helicity biases the electrically driven formation of persistent analog conductance states in chiral quasi-two-dimensional perovskite synapses. Within the (R/S-PEA)2MAn -1PbnI3 n +1 multi-quantum-well series, the n = 3 composition provided the optimal convergence of chiroptical selectivity, layered structural registry, and transport-supporting structural order, enabling reproducible low-nonlinearity analog weight updates and 72 statistically distinguishable conductance states retained over 106 s. An independently evaluated read-noise-informed framework yielded a read-noise-limited capacity estimate of 72.3 levels, providing a quantitative link between measured read noise and analog-state capacity. In conclusion, optical helicity can be encoded into, retained in, and read from electrically programmed analog conductance states, providing a persistent state variable for neuromorphic computation.
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