104 research outputs found
Nonlinear coupling of nano mechanical resonators to Josephson quantum circuits
We propose a technique to couple the position operator of a nano mechanical
resonator to a SQUID device by modulating its magnetic flux bias. By tuning the
magnetic field properly, either linear or quadratic couplings can be realized,
with a discretely adjustable coupling strength. This provides a way to realize
coherent nonlinear effects in a nano mechanical resonator by coupling it to a
Josephson quantum circuit. As an example, we show how squeezing of the nano
mechanical resonator state can be realized with this technique. We also propose
a simple method to measure the uncertainty in the position of the nano
mechanical resonator without quantum state tomography
Scalable fault-tolerant quantum computation in DFS blocks
We investigate how to concatenate different decoherence-free subspaces (DFSs)
to realize scalable universal fault-tolerant quantum computation. Based on
tunable interactions, we present an architecture for scalable quantum
computers which can fault-tolerantly perform universal quantum computation by
manipulating only single type of parameter. By using the concept of
interaction-free subspaces we eliminate the need to tune the couplings between
logical qubits, which further reduces the technical difficulties for
implementing quantum computation.Comment: 4 papges, 2 figure
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