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Stable Universal 1- and 2-Input Single-Molecule Logic Gates.

Ran LiuYingmei HanFeng SunGyan KhatriJaesuk KwonCameron NickleLejia WangChuan-Kui WangDamien ThompsonZong-Liang LiChristian A NijhuisEnrique Del Barco
Published in: Advanced materials (Deerfield Beach, Fla.) (2022)
Controllable single-molecule logic operations will enable development of reliable ultra-minimalistic circuit elements for high-density computing but require stable currents from multiple orthogonal inputs in molecular junctions. Utilizing the two unique adjacent conductive molecular orbitals (MOs) of gated Au/S-(CH 2 ) 3 -Fc-(CH 2 ) 9 -S/Au (Fc = ferrocene) single-electron transistors (≈2 nm), a stable single-electron logic calculator (SELC) is presented, which allows real-time modulation of output current as a function of orthogonal input bias (V b ) and gate (V g ) voltages. Reliable and low-voltage (ǀV b ǀ ≤ 80 mV, ǀV g ǀ ≤ 2 V) operations of the SELC depend upon the unambiguous association of current resonances with energy shifts of the MOs (which show an invariable, small energy separation of ≈100 meV) in response to the changes of voltages, which is confirmed by electron-transport calculations. Stable multi-logic operations based on the SELC modulated current conversions between the two resonances and Coulomb blockade regimes are demonstrated via the implementation of all universal 1-input (YES/NOT/PASS_1/PASS_0) and 2-input (AND/XOR/OR/NAND/NOR/INT/XNOR) logic gates.
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