7 results on '"Neal C. Pisenti"'
Search Results
2. Generalized Hamiltonian to describe imperfections in ion-light interaction
- Author
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Kenneth Wright, Neal C. Pisenti, Ming Li, Jason H. V. Nguyen, Kristin M. Beck, and Yunseong Nam
- Subjects
Physics ,Quantum Physics ,Atomic Physics (physics.atom-ph) ,FOS: Physical sciences ,Physics - Applied Physics ,Applied Physics (physics.app-ph) ,Quantum entanglement ,Laser ,01 natural sciences ,Physics - Atomic Physics ,010305 fluids & plasmas ,Ion ,law.invention ,symbols.namesake ,Quantum gate ,Classical mechanics ,law ,0103 physical sciences ,symbols ,Quantum Physics (quant-ph) ,010306 general physics ,Hamiltonian (quantum mechanics) ,Quantum ,Axial mode - Abstract
We derive a general Hamiltonian that governs the interaction between an $N$-ion chain and an externally controlled laser field, where the ion motion is quantized and the laser field is considered beyond the plane-wave approximation. This general form not only explicitly includes terms that are used to drive ion-ion entanglement, but also a series of unwanted terms that can lead to quantum gate infidelity. We demonstrate the power of our expressivity of the general Hamiltonian by singling out the effect of axial mode heating and confirm this experimentally. We discuss pathways forward in furthering the trapped-ion quantum computational quality, guiding hardware design decisions.
- Published
- 2020
- Full Text
- View/download PDF
3. Efficient sideband cooling protocol for long trapped-ion chains
- Author
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Yunseong Nam, D. Murphy, K. A. Landsman, Neal C. Pisenti, Kenneth Wright, Jwo-Sy Chen, J.M. Amini, and Kristin M. Beck
- Subjects
Physics ,Quantum Physics ,Sideband ,Resolved sideband cooling ,Atomic Physics (physics.atom-ph) ,Degrees of freedom (statistics) ,FOS: Physical sciences ,Ion ,Computational physics ,Physics - Atomic Physics ,Quantum algorithm ,Physics::Atomic Physics ,Ground state ,Quantum Physics (quant-ph) ,Quantum ,Quantum computer - Abstract
Trapped ions are a promising candidate for large scale quantum computation. Several systems have been built in both academic and industrial settings to implement modestly-sized quantum algorithms. Efficient cooling of the motional degrees of freedom is a key requirement for high-fidelity quantum operations using trapped ions. Here, we present a technique whereby individual ions are used to cool individual motional modes in parallel, reducing the time required to bring an ion chain to its motional ground state. We demonstrate this technique experimentally and develop a model to understand the efficiency of our parallel sideband cooling technique compared to more traditional methods. This technique is applicable to any system using resolved sideband cooling of co-trapped atomic species and only requires individual addressing of the trapped particles., 7 pages, 5 figures
- Published
- 2020
4. Power-optimal, stabilized entangling gate between trapped-ion qubits
- Author
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Yunseong Nam, Nikodem Grzesiak, Reinhold Blümel, Kenneth Wright, and Neal C. Pisenti
- Subjects
Physics ,FOS: Computer and information sciences ,Quantum Physics ,Computer Networks and Communications ,QC1-999 ,Phase (waves) ,Computer Science - Emerging Technologies ,FOS: Physical sciences ,Statistical and Nonlinear Physics ,QA75.5-76.95 ,Parameter space ,Topology ,Power (physics) ,Emerging Technologies (cs.ET) ,Computational Theory and Mathematics ,Modulation ,Electronic computers. Computer science ,Qubit ,Scalability ,Computer Science (miscellaneous) ,State (computer science) ,Quantum Physics (quant-ph) ,Quantum computer - Abstract
To achieve scalable quantum computing, improving entangling-gate fidelity and its implementation efficiency are of utmost importance. We present here a linear method to construct provably power-optimal entangling gates on an arbitrary pair of qubits on a trapped-ion quantum computer. This method leverages simultaneous modulation of amplitude, frequency, and phase of the beams that illuminate the ions and, unlike the state of the art, does not require any search in the parameter space. The linear method is extensible, enabling stabilization against external parameter fluctuations to an arbitrary order at a cost linear in the order. We implement and demonstrate the power-optimal, stabilized gate on a trapped-ion quantum computer.
- Published
- 2019
- Full Text
- View/download PDF
5. An ultra-low noise, high-voltage piezo driver
- Author
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Gretchen K. Campbell, Daniel S. Barker, B. J. Reschovsky, Alessandro Restelli, and Neal C. Pisenti
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Physics ,Physics - Instrumentation and Detectors ,Switched-mode power supply ,business.industry ,Noise (signal processing) ,Atomic Physics (physics.atom-ph) ,Flyback transformer ,Electrical engineering ,FOS: Physical sciences ,High voltage ,02 engineering and technology ,Instrumentation and Detectors (physics.ins-det) ,Approx ,021001 nanoscience & nanotechnology ,01 natural sciences ,Signal ,Article ,Physics - Atomic Physics ,0103 physical sciences ,Digital control ,010306 general physics ,0210 nano-technology ,Control logic ,business ,Instrumentation - Abstract
We present an ultra-low noise, high-voltage driver suited for use with piezoelectric actuators and other low-current applications. The architecture uses a flyback switching regulator to generate up to 250V in our current design, with an output of 1 kV or more possible with small modifications. A high slew-rate op-amp suppresses the residual switching noise, yielding a total RMS noise of $\approx 100\mu$V (1 Hz--100 kHz). A low-voltage ($\pm 10$V), high bandwidth signal can be summed with unity gain directly onto the output, making the driver well-suited for closed-loop feedback applications. Digital control enables both repeatable setpoints and sophisticated control logic, and the circuit consumes less than 150mA at $\pm 15$V.
- Published
- 2016
6. Three-photon process for producing a degenerate gas of metastable alkaline-earth-metal atoms
- Author
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Gretchen K. Campbell, Neal C. Pisenti, Daniel S. Barker, and B. J. Reschovsky
- Subjects
Physics ,Alkaline earth metal ,Photon ,Momentum transfer ,Degenerate energy levels ,01 natural sciences ,010309 optics ,Scientific method ,Metastability ,0103 physical sciences ,Physics::Atomic Physics ,Atomic physics ,010306 general physics ,Ground state ,Excitation - Abstract
An excitation scheme for transferring alkaline-earth-metal atoms from their ground state to metastable states is proposed, where the employed three-photon process is demonstrated to have transfer efficiencies as high as about 90% and can be managed to avoid momentum transfer to the degenerate gas during the excitation.
- Published
- 2016
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- View/download PDF
7. Enhanced Magnetic Trap Loading for Atomic Strontium
- Author
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B. J. Reschovsky, Gretchen K. Campbell, Daniel S. Barker, and Neal C. Pisenti
- Subjects
Physics ,Condensed Matter::Quantum Gases ,Strontium ,Atomic Physics (physics.atom-ph) ,chemistry.chemical_element ,FOS: Physical sciences ,Laser ,Atomic and Molecular Physics, and Optics ,law.invention ,Physics - Atomic Physics ,Trap (computing) ,chemistry ,Ultracold atom ,law ,Quantum Gases (cond-mat.quant-gas) ,Laser cooling ,Magnetic trap ,Physics::Atomic and Molecular Clusters ,Laser detuning ,Atomic number ,Physics::Atomic Physics ,Atomic physics ,Condensed Matter - Quantum Gases - Abstract
We report on a technique to improve the continuous loading of atomic strontium into a magnetic trap from a Magneto-Optical Trap (MOT). This is achieved by adding a depumping laser tuned to the 3P1 to 3S1 (688-nm) transition. The depumping laser increases atom number in the magnetic trap and subsequent cooling stages by up to 65 % for the bosonic isotopes and up to 30 % for the fermionic isotope of strontium. We optimize this trap loading strategy with respect to the 688-nm laser detuning, intensity, and beam size. To understand the results, we develop a one-dimensional rate equation model of the system, which is in good agreement with the data. We discuss the use of other transitions in strontium for accelerated trap loading and the application of the technique to other alkaline-earth-like atoms., Comment: 8 pages, 8 figures
- Published
- 2015
- Full Text
- View/download PDF
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