Probabilistic Quantum Logic Operations Using Polarizing Beam Splitters
arXiv:quant-ph/0107091 · doi:10.1103/PhysRevA.64.062311
Abstract
It has previously been shown that probabilistic quantum logic operations can be performed using linear optical elements, additional photons (ancilla), and post-selection based on the output of single-photon detectors. Here we describe the operation of several quantum logic operations of an elementary nature, including a quantum parity check and a quantum encoder, and we show how they can be combined to implement a controlled-NOT (CNOT) gate. All of these gates can be constructed using polarizing beam splitters that completely transmit one state of polarization and totally reflect the orthogonal state of polarization, which allows a simple explanation of each operation. We also describe a polarizing beam splitter implementation of a CNOT gate that is closely analogous to the quantum teleportation technique previously suggested by Gottesman and Chuang [Nature 402, p.390 (1999)]. Finally, our approach has the interesting feature that it makes practical use of a quantum-eraser technique.
9 pages, RevTex; Submitted to Phys. Rev. A; additional references inlcuded
References in corpus (3)
Cited by in corpus (184)
- Review article: Linear optical quantum computing
- A Quantum Engineer's Guide to Superconducting Qubits
- Multi-photon entanglement and interferometry
- Optical Quantum Computing
- Resource-efficient linear optical quantum computation
- A near deterministic linear optical CNOT gate
- Photonic quantum information processing: a concise review
- Large-scale silicon quantum photonics implementing arbitrary two-qubit processing
- Quantum repeaters: From quantum networks to the quantum internet
- Quantum process tomography of a controlled-NOT gate
- A Quantum Rosetta Stone for Interferometry
- Photon number resolution using a time-multiplexed single-photon detector
- Experimental Controlled-NOT Logic Gate for Single Photons in the Coincidence Basis
- Realization of a photonic CNOT gate sufficient for quantum computation
- Weak nonlinearities: A new route to optical quantum computation
- Efficient Toffoli Gates Using Qudits
- How good must single photon sources and detectors be for efficient linear optical quantum computation?
- Demonstration of an optical quantum controlled-NOT gate without path interference
- Charge detection enables free-electron quantum computation
- Quantum Computing Using Single Photons and the Zeno Effect
- Quantum Logic Operations Using Single Photons and the Zeno Effect
- Demonstration of Non-Deterministic Quantum Logic Operations using Linear Optical Elements
- Direct generation of three-photon polarization entanglement
- Heralded generation of entangled photon pairs
- Photon number resolving detection using time-multiplexing
- Linear Optical Quantum Computing in a Single Spatial Mode
- A quantum Fredkin gate
- Experimental demonstration of a non-destructive controlled-NOT quantum gate for two independent photon-qubits
- A monolithically integrated polarization entangled photon pair source on a silicon chip
- Quantum relays and noise suppression using linear optics
- Experimental Verification of Multipartite Entanglement in Quantum Networks
- High-fidelity quantum logic operations using linear optical elements
- Linear optics and projective measurements alone suffice to create large-photon-number path entanglement
- Full characterization of a three-photon GHZ state using quantum state tomography
- A Note on Linear Optics Gates by Post-Selection
- Generalized multi-photon quantum interference
- Linear optics quantum Toffoli and Fredkin gates
- Local transformation of two EPR photon pairs into a three-photon W state
- Single-photon quantum error rejection and correction with linear optics
- Solving systems of linear equations on a quantum computer
- Integrated-optics heralded controlled-NOT gate for polarization-encoded qubits
- Measurement-induced Nonlinearity in Linear Optics
- Scalable photonic quantum computing assisted by quantum-dot spin in double-sided optical microcavity
- Faithful qubit distribution assisted by one additional qubit against collective noise
- An Entanglement Filter
- A controlled-NOT gate for frequency-bin qubits
- Experimental nonlinear sign shift for linear optics quantum computation
- Local Conversion of Greenberger-Horne-Zeilinger States to Approximate W States
- Single-photon device requirements for operating linear optics quantum computing outside the post-selection basis
- Optical Nondestructive Controlled-NOT Gate without Using Entangled Photons
- Practical measurement of joint weak values and their connection to the annihilation operator
- Quantum state fusion in photons
- Optical Quantum Computation
- The Photonic Module: an on-demand resource for photonic entanglement
- Processing multi-photon state through operation on single photon: methods and applications
- All-Optical Switching Using the Quantum Zeno Effect and Two-Photon Absorption
- Experimental Construction of Optical Multi-qubit Cluster States From Bell States
- Demonstration of Feed-Forward Control for Linear Optics Quantum Computation
- Potential and limits to cluster state quantum computing using probabilistic gates
- Quantum information processing via a lossy bus
- Low-cost Fredkin gate with auxiliary space
- Methods for linear optical quantum Fredkin gate
- Linear optical Fredkin gate based on partial-SWAP gate
- Multipartite entanglement purification with quantum nondemolition detectors
- Robust photonic entanglement distribution via state-independent encoding onto decoherence-free subspace
- Photonic two-qubit parity gate with tiny cross-Kerr nonlinearity
- Demonstration of local expansion toward large-scale entangled webs
- Practical quantum repeaters with linear optics and double-photon guns
- Experimentally exploring compressed sensing quantum tomography
- An All Linear Optical Quantum Memory Based on Quantum Error Correction
- Fault-Tolerant Topological One-Way Quantum Computation with Probabilistic Two-Qubit Gates
- High-fidelity entanglement swapping and generation of three-qubit GHZ state using asynchronous telecom photon pair sources
- Experimental Entangled Entanglement
- Heralded non-destructive quantum entangling gate with single-photon sources
- Efficient generation of universal two-dimensional cluster states with hybrid systems
- Experimental realization of linear-optical partial SWAP gates
- Frequency and temporal effects in linear optical quantum computing
- Heralded generation of multiphoton entanglement
- Deterministic CNOT gate and entanglement swapping for photonic qubits using a quantum-dot spin in a double-sided optical microcavity
- Teleportation implementation of non-deterministic quantum logic operations by using linear optical elements
- Highly Efficient Processing Multi-photon States
- Quantum Optical Systems for the Implementation of Quantum Information Processing
- Intrinsically narrowband pair photon generation in microstructured fibres
- Thermal entanglement and teleportation in a two-qubit Heisenberg chain with Dzyaloshinski-Moriya anisotropic antisymmetric interaction
- Optimal synthesis of the Fredkin gate in a multilevel system
- Conditional linear-optical measurement schemes generate effective photon nonlinearities
- Upper bounds on success probabilities in linear optics
- Universal quantum computation on the power of quantum non-demolition measurements
- Probabilistic Quantum Encoder for Single-Photon Qubits
- High-visibility nonclassical interference between pure heralded single photons and weak coherent photons
- Quantum entanglement distribution with hybrid parity gate
- Metasurface polarization splitter
- Optimal local expansion of W states using linear optics and Fock states
- Experimental requirements for Grover's algorithm in optical quantum computation
- Error models for mode-mismatch in linear optics quantum computing
- Group transformations and entangled-state quantum gates with directionally unbiased linear-optical multiports
- Experimental Realization of a Photonic Bell-State Analyzer
- Zeno logic gates using micro-cavities
- Universal quantum multi-qubit entangling gates with auxiliary spaces
- Preparation of W, GHZ, and two-qutrit states using bimodal cavities
- Generalized parity measurements
- Single Photon Source Using Laser Pulses and Two-Photon Absorption
- Quantum nonlocality obtained from local states by entanglement purification
- Experimental Demonstration of a Quantum Circuit using Linear Optics Gates
- Generation of entangled ancilla states for use in linear optics quantum computing
- Utilizing Encoding in Scalable Linear Optics Quantum Computing
- Loss Tolerant Linear Optical Quantum Memory By Measurement Based Quantum Computing
- Quantum error rejection code with spontaneous parametric conversion
- Experimental characterization of universal one-way quantum computing
- Imperfect Detectors in Linear Optical Quantum Computers
- Heralded Two-Photon Entanglement from Probabilistic Quantum Logic Operations on Multiple Parametric Down-Conversion Sources
- High-Fidelity Z-Measurement Error Correction of Optical Qubits
- Experimental Demonstration of Robust Bidirectional Quantum Optical Communications
- Probabilistic growth of large entangled states with low error accumulation
- Minimal resources for linear optical one-way computing
- Selective Filtering of Photonic Quantum Entanglement via Anti-Parity-Time Symmetry
- Efficient decoherence-free entanglement distribution over lossy quantum channels
- Quantum Information Processing by Weaving Quantum Talbot Carpets
- Linear-optical implementations of the iSWAP and controlled NOT gates based on conventional detectors
- Entanglement generation by Fock-state filtration
- Logical operations with single x-ray photons via dynamically-controlled nuclear resonances
- Conditional generation of arbitrary multimode entangled states of light with linear optics
- Cluster state preparation using gates operating at arbitrary success probabilities
- High-fidelity linear optical quantum computing with polarization encoding
- Experimental realization of programmable quantum gate
- Experimental ancilla-assisted qubit transmission against correlated noise using quantum parity checking
- Preparation of entangled states of two photons in several spatial modes
- Experimental characterization of photonic fusion using fiber sources
- Perturbation theory for quantum-mechanical observables
- Can A Universal Quantum Cloner Be Used to Design an Experimentally Feasible Near-Deterministic CNOT Gate ?
- Protecting quantum entanglement from amplitude damping
- Comparison of LOQC C-sign gates with ancilla inefficiency and an improvement to functionality under these conditions
- A Hybrid and Universal Blind Quantum Computation
- Single photons on demand from 3D photonic band-gap structures
- Linear optics implementation of general two-photon projective measurement
- Linear optical quantum computation with imperfect entangled photon-pair sources and inefficient non-photon-number-resolving detectors
- An introduction to one-way quantum computing in distributed architectures
- Feed-forward and its role in conditional linear optical quantum dynamics
- Robustness of quantum communication based on a decoherence-free subspace using a counter-propagating weak coherent light pulse
- An Algebraic Approach to Linear-Optical Schemes for Deterministic Quantum Computing
- Atomic cluster state build up with macroscopic heralding
- Exploiting the quantum Zeno effect to beat photon loss in linear optical quantum information processors
- Limits to multipartite entanglement generation with bosons and fermions
- Scaling of success probabilities for linear optics gates
- Linear optics substituting scheme for multi-mode operations
- Efficient Fusion of Photonic W-states with Nonunitary Partial-swap Gates
- Joining and splitting the quantum states of photons
- Multi-photon entanglement from distant single photon sources on demand
- Coherent Communication with Linear Optics
- Methods for Producing Decoherence-Free States and Noiseless Subsystems Using Photonic Qutrits
- Photon Added Detection
- Entanglement of the Ising-Heisenberg diamond spin-1/2 cluster in evolution
- From Linear Optical Quantum Computing to Heisenberg-Limited Interferometry
- Self-error-rejecting quantum state transmission of entangled photons for faithful quantum communication without calibrate reference frames
- The superconducting circuit companion -- an introduction with worked examples
- Efficient graph state generation and artificial error detection
- Conditional sign flip via teleportation
- Hong-Ou-Mandel dip using photon pairs from a PPLN waveguide
- Input states for quantum gates
- Experimental demonstration of quantum leader election in linear optics
- Optical attenuation without absorption
- Multiple multi-control unitary operations: implementation and applications
- Percolation in quantum computation and communication
- Extracting an entangled photon pair from collectively decohered pairs at a telecommunication wavelength
- Universal quantum circuit for n-qubit quantum gate: A programmable quantum gate
- Cloning of arbitrary mirror-symmetric distributions on Bloch sphere: Optimality proof and proposal for practical photonic realization
- Optimal implementation of two-qubit linear optical quantum filters
- Experimental entanglement swapping through single-photon nonlinearity
- Coherence via reiterated beam splitting
- Implementing Non-Projective Measurements via Linear Optics: an Approach Based on Optimal Quantum State Discrimination
- Comment on Photon Exchange Interactions
- Experimental demonstration of robust entanglement distribution over reciprocal noisy channels assisted by a counter-propagating classical reference light
- Quantum Computing, Metrology, and Imaging
- Polarization-entangled photon pair sources based on spontaneous four wave mixing assisted by polarization mode dispersion
- State-adaptive quantum error correction and fault-tolerant quantum computing
- Alternate Scheme for Optical Cluster-State Generation without Number-Resolving Photon Detectors
- An efficient quantum filter for multiphoton states
- Quantum Interferometric Sensors
- Chiral photonic circuits for deterministic spin transfer
- Linear optical fan-out gates using fewer ancillary single photons with enhanced success probability
- Building a fusion-based quantum computer using teleported gates
- Preparation of two-qubit entangled states on a spin-1/2 Ising-Heisenberg diamond spin cluster by controlling the measurement
- Implementation of controlled-NOT quantum gate by nonlinear coupled electro-nano-optomechanical oscillators
- Deterministic linear-optical computing with symmetry-based qubits