• DocumentCode
    2539221
  • Title

    Experimental studies of clocked quantum-dot cellular automata devices

  • Author

    Orlov, A.O. ; Toth, G. ; Amlani, I. ; Kummamuru, R. ; Ramasubramaniam, R. ; Lent, C.S. ; Bernstein, G.H. ; Snider, G.L.

  • Author_Institution
    Dept. of Electr. Eng., Notre Dame Univ., IN, USA
  • fYear
    2000
  • fDate
    19-21 June 2000
  • Firstpage
    157
  • Lastpage
    158
  • Abstract
    Devices based on the quantum-dot cellular automata (QCA) computational approach (Lent et al, 1993) use interacting quantum dots to encode and process binary information. In this transistorless approach to computation, logic levels are represented by the configurations of single electrons in coupled quantum-dot systems. In the last few years, significant progress has been made towards the realization of basic QCA elements. However, in these devices, power gain needed for the operation of large QCA arrays was not possible since the only source of energy was the signal input. Recent theoretical work (Lent and Tougaw, 1997) proposed clocked control of the QCA circuitry. Clocked controlled QCA systems have many advantages such as power gain, reduced power dissipation, and pipelined architectures. The original theoretical work applied only to semiconductor implementation of clocked QCA arrays, but recently a scheme for clocked control of metallic QCA cells was proposed (Toth and Lent, 1999; Korotkov and Likharev, 1998). Here an extra dot placed between the two dots of the QCA half-cell acts as a tunable barrier controlled by the clock signal. We present the experimental demonstration of a clocked QCA cell. The device consists of two capacitively coupled half-cells, where each half-cell consists of three micron-size Al islands separated by tunnel junctions, and four electrometers to measure the charge state of the half-cells. The half-cells are leadless, with no DC connection to the environment.
  • Keywords
    aluminium; cellular automata; clocks; electrometers; quantum computing; quantum dots; quantum gates; Al; Al islands; QCA arrays; QCA computational approach; QCA elements; QCA half-cell dots; binary information encoding; binary information processing; capacitively coupled half-cells; clocked QCA arrays; clocked QCA cell; clocked QCA circuit control; clocked controlled QCA systems; clocked quantum-dot cellular automata devices; coupled quantum-dot systems; electrometers; half-cell charge state measurement; interacting quantum dots; logic level representation; metallic QCA cells; pipelined architectures; power dissipation; power gain; quantum-dot cellular automata computational approach; semiconductor implementation; signal input energy; single electron configurations; transistorless computation; tunable barrier dot; tunnel junctions; Clocks; Control systems; Current measurement; Electrons; Logic devices; Power dissipation; Quantum cellular automata; Quantum computing; Quantum dots; Tunable circuits and devices;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Device Research Conference, 2000. Conference Digest. 58th DRC
  • Conference_Location
    Denver, CO, USA
  • Print_ISBN
    0-7803-6472-4
  • Type

    conf

  • DOI
    10.1109/DRC.2000.877130
  • Filename
    877130