MbrlCatalogueTitleDetail

Do you wish to reserve the book?
Universal logic with encoded spin qubits in silicon
Universal logic with encoded spin qubits in silicon
Hey, we have placed the reservation for you!
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
Universal logic with encoded spin qubits in silicon
Oops! Something went wrong.
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Title added to your shelf!
Title added to your shelf!
View what I already have on My Shelf.
Oops! Something went wrong.
Oops! Something went wrong.
While trying to add the title to your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Universal logic with encoded spin qubits in silicon
Universal logic with encoded spin qubits in silicon

Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
How would you like to get it?
We have requested the book for you! Sorry the robot delivery is not available at the moment
We have requested the book for you!
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
Universal logic with encoded spin qubits in silicon
Universal logic with encoded spin qubits in silicon
Journal Article

Universal logic with encoded spin qubits in silicon

2023
Request Book From Autostore and Choose the Collection Method
Overview
Quantum computation features known examples of hardware acceleration for certain problems, but is challenging to realize because of its susceptibility to small errors from noise or imperfect control. The principles of fault tolerance may enable computational acceleration with imperfect hardware, but they place strict requirements on the character and correlation of errors 1 . For many qubit technologies 2 – 21 , some challenges to achieving fault tolerance can be traced to correlated errors arising from the need to control qubits by injecting microwave energy matching qubit resonances. Here we demonstrate an alternative approach to quantum computation that uses energy-degenerate encoded qubit states controlled by nearest-neighbour contact interactions that partially swap the spin states of electrons with those of their neighbours. Calibrated sequences of such partial swaps, implemented using only voltage pulses, allow universal quantum control while bypassing microwave-associated correlated error sources 1 , 22 – 28 . We use an array of six 28 Si/SiGe quantum dots, built using a platform that is capable of extending in two dimensions following processes used in conventional microelectronics 29 . We quantify the operational fidelity of universal control of two encoded qubits using interleaved randomized benchmarking 30 , finding a fidelity of 96.3% ± 0.7% for encoded controlled NOT operations and 99.3% ± 0.5% for encoded SWAP. The quantum coherence offered by enriched silicon 5 – 9 , 16 , 18 , 20 , 22 , 27 , 29 , 31 – 37 , the all-electrical and low-crosstalk-control of partial swap operations 1 , 22 – 28 and the configurable insensitivity of our encoding to certain error sources 28 , 33 , 34 , 38 all combine to offer a strong pathway towards scalable fault tolerance and computational advantage. In this alternative approach to quantum computation, the all-electrical operation of two qubits, each encoded in three physical solid-state spin qubits, realizes swap-based universal quantum logic in an extensible physical architecture.