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Dive into the research topics where Parsa Bonderson is active.

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Featured researches published by Parsa Bonderson.


Physical Review Letters | 2006

Detecting Non-Abelian Statistics in the nu = 5/2 Fractional Quantum Hall State

Parsa Bonderson; Alexei Kitaev; Kirill Shtengel

In this Letter we propose an interferometric experiment to detect non-Abelian quasiparticle statistics--one of the hallmark characteristics of the Moore-Read state expected to describe the observed fractional quantum Hall effect plateau at nu = 5/2. The implications for using this state for constructing a topologically protected qubit as has been recently proposed by Das Sarma et al. are also addressed.


Physical Review Letters | 2008

Measurement-Only Topological Quantum Computation

Michael H. Freedman; Chetan Nayak; Parsa Bonderson

We remove the need to physically transport computational anyons around each other from the implementation of computational gates in topological quantum computing. By using an anyonic analog of quantum state teleportation, we show how the braiding transformations used to generate computational gates may be produced through a series of topological charge measurements.


Physical Review B | 2017

Scalable Designs for Quasiparticle-Poisoning-Protected Topological Quantum Computation with Majorana Zero Modes

Torsten Karzig; Christina Knapp; Roman M. Lutchyn; Parsa Bonderson; Matthew B. Hastings; Chetan Nayak; Jason Alicea; Karsten Flensberg; Stephan Plugge; Yuval Oreg; C. M. Marcus; Michael H. Freedman

We present designs for scalable quantum computers composed of qubits encoded in aggregates of four or more Majorana zero modes, realized at the ends of topological superconducting wire segments that are assembled into superconducting islands with significant charging energy. Quantum information can be manipulated according to a measurement-only protocol, which is facilitated by tunable couplings between Majorana zero modes and nearby semiconductor quantum dots. Our proposed architecture designs have the following principal virtues: (1) the magnetic field can be aligned in the direction of all of the topological superconducting wires since they are all parallel; (2) topological T junctions are not used, obviating possible difficulties in their fabrication and utilization; (3) quasiparticle poisoning is abated by the charging energy; (4) Clifford operations are executed by a relatively standard measurement: detection of corrections to quantum dot energy, charge, or differential capacitance induced by quantum fluctuations; (5) it is compatible with strategies for producing good approximate magic states.


Physical Review Letters | 2011

Topological Quantum Buses: Coherent Quantum Information Transfer between Topological and Conventional Qubits

Parsa Bonderson; Roman M. Lutchyn

We propose computing bus devices that enable quantum information to be coherently transferred between topological and conventional qubits. We describe a concrete realization of such a topological quantum bus acting between a topological qubit in a Majorana wire network and a conventional semiconductor double quantum dot qubit. Specifically, this device measures the joint (fermion) parity of these two different qubits by using the Aharonov-Casher effect in conjunction with an ancilliary superconducting flux qubit that facilitates the measurement. Such a parity measurement, together with the ability to apply Hadamard gates to the two qubits, allows one to produce states in which the topological and conventional qubits are maximally entangled and to teleport quantum states between the topological and conventional quantum systems.


Physical Review Letters | 2006

Probing Non-Abelian Statistics with Quasiparticle Interferometry

Parsa Bonderson; Kirill Shtengel; J. K. Slingerland

We examine interferometric experiments in systems that exhibit non-Abelian braiding statistics, expressing outcomes in terms of the modular S-matrix. In particular, this result applies to fractional quantum Hall interferometry, and we give a detailed treatment of the Read-Rezayi states, providing explicit predictions for the recently observed nu = 12/5 plateau.


Physical Review B | 2011

Plasma analogy and non-Abelian statistics for Ising-type quantum Hall states

Parsa Bonderson; Victor Gurarie; Chetan Nayak

We study the non-Abelian statistics of quasiparticles in the Ising-type quantum Hall states which are likely candidates to explain the observed Hall conductivity plateaus in the second Landau level, most notably the one at filling fraction {nu}=5/2. We complete the program started in V. Gurarie and C. Nayak, [Nucl. Phys. B 506, 685 (1997)]. and show that the degenerate four-quasihole and six-quasihole wave functions of the Moore-Read Pfaffian state are orthogonal with equal constant norms in the basis given by conformal blocks in a c=1+(1/2) conformal field theory. As a consequence, this proves that the non-Abelian statistics of the excitations in this state are given by the explicit analytic continuation of these wave functions. Our proof is based on a plasma analogy derived from the Coulomb gas construction of Ising model correlation functions involving both order and (at most two) disorder operators. We show how this computation also determines the non-Abelian statistics of collections of more than six quasiholes and give an explicit expression for the corresponding conformal block-derived wave functions for an arbitrary number of quasiholes. Our method also applies to the anti-Pfaffian wave function and to Bonderson-Slingerland hierarchy states constructed over the Moore-Read and anti-Pfaffian states.


Annals of Physics | 2008

Interferometry of non-Abelian anyons

Parsa Bonderson; Kirill Shtengel; J. K. Slingerland

We develop the general quantum measurement theory of non-Abelian anyons through interference experiments. The paper starts with a terse introduction to the theory of anyon models, focusing on the basic formalism necessary to apply standard quantum measurement theory to such systems. This is then applied to give a detailed analysis of anyonic charge measurements using a Mach–Zehnder interferometer for arbitrary anyon models. We find that, as anyonic probes are sent through the legs of the interferometer, superpositions of the total anyonic charge located in the target region collapse when they are distinguishable via monodromy with the probe anyons, which also determines the rate of collapse. We give estimates on the number of probes needed to obtain a desired confidence level for the measurement outcome distinguishing between charges, and explicitly work out a number of examples for some significant anyon models. We apply the same techniques to describe interferometry measurements in a double point-contact interferometer realized in fractional quantum Hall systems. To lowest order in tunneling, these results essentially match those from the Mach–Zehnder interferometer, but we also provide the corrections due to processes involving multiple tunnelings. Finally, we give explicit predictions describing state measurements for experiments in the Abelian hierarchy states, the non-Abelian Moore–Read state at v = 5/2 and Read–Rezayi state at v = 12/5.


Physical Review Letters | 2010

Implementing arbitrary phase gates with Ising anyons.

Parsa Bonderson; David J. Clarke; Chetan Nayak; Kirill Shtengel

Ising-type non-Abelian anyons are likely to occur in a number of physical systems, including quantum Hall systems, where recent experiments support their existence. In general, non-Abelian anyons may be utilized to provide a topologically error-protected medium for quantum information processing. However, the topologically protected operations that may be obtained by braiding and measuring topological charge of Ising anyons are precisely the Clifford gates, which are not computationally universal. The Clifford gate set can be made universal by supplementing it with single-qubit pi/8-phase gates. We propose a method of implementing arbitrary single-qubit phase gates for Ising anyons by running a current of anyons with interfering paths around computational anyons.


Annals of Physics | 2009

Measurement-Only Topological Quantum Computation via Anyonic Interferometry

Parsa Bonderson; Michael H. Freedman; Chetan Nayak

We describe measurement-only topological quantum computation using both projective and interferometrical measurement of topological charge. We demonstrate how anyonic teleportation can be achieved using “forced measurement” protocols for both types of measurement. Using this, it is shown how topological charge measurements can be used to generate the braiding transformations used in topological quantum computation, and hence that the physical transportation of computational anyons is unnecessary. We give a detailed discussion of the anyonics for implementation of topological quantum computation (particularly, using the measurement-only approach) in fractional quantum Hall systems.


Physical Review B | 2009

Interferometric signature of non-Abelian anyons

Waheb Bishara; Parsa Bonderson; Chetan Nayak; Kirill Shtengel; J. K. Slingerland

Department of Physics, California Institute of Technology, Pasadena, California 91125, USA Microsoft Research, Station Q, Elings Hall, University of California, Santa Barbara, CA 93106, USA Department of Physics, University of California, Santa Barbara, CA 93106, USA Department of Physics and Astronomy, University of California at Riverside, Riverside, CA 92507 Institute for Quantum Information, California Institute of Technology, Pasadena, California 91125, USA Dublin Institute for Advanced Studies, School of Theoretical Physics, 10 Burlington Rd, Dublin, Ireland Department of Mathematical Physics, National University of Ireland, Maynooth, Ireland (Dated: September 18, 2009)

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Chetan Nayak

University of California

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Victor Gurarie

University of Colorado Boulder

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Jason Alicea

California Institute of Technology

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