Open Access. Powered by Scholars. Published by Universities.®
- Discipline
-
- Atomic, Molecular and Optical Physics (5)
- Condensed Matter Physics (4)
- Chemistry (3)
- Computational Chemistry (3)
- Applied Mathematics (2)
-
- Dynamical Systems (2)
- Mathematics (2)
- Statistical, Nonlinear, and Soft Matter Physics (2)
- Atmospheric Sciences (1)
- Climate (1)
- Computer Sciences (1)
- Geometry and Topology (1)
- Non-linear Dynamics (1)
- Numerical Analysis and Computation (1)
- Numerical Analysis and Scientific Computing (1)
- Oceanography and Atmospheric Sciences and Meteorology (1)
- Optics (1)
- Keyword
-
- Basis set (2)
- Electronic structure (2)
- Atmosphere Models (1)
- Bifurcation (1)
- Bistable (1)
-
- Bose-Einstein condensate (1)
- Chaos (1)
- Condensed matter physics (1)
- DMRG (1)
- Data Assimilation (1)
- Diagonal basis set (1)
- Diamond (1)
- Discrete variable representation (1)
- Dispersive charge sensing (1)
- Dynamical Systems (1)
- Dynamical decoupling (1)
- Electron spin defect (1)
- Entangling gates (1)
- Fermi gas (1)
- Fermionic (1)
- Fluctuations (1)
- Gausslet (1)
- Graph neural networks (1)
- Hamiltonian neural networks (1)
- Interatomic potential (1)
- Interatomic potentials (1)
- Josephson junctions (1)
- Kerr (1)
- Kohn-Sham system (1)
- Machine learning (1)
Articles 1 - 13 of 13
Full-Text Articles in Quantum Physics
Noise Characterization And Mitigation In Intermediate-Scale Quantum Systems, Muhammad Qasim Khan
Noise Characterization And Mitigation In Intermediate-Scale Quantum Systems, Muhammad Qasim Khan
Dartmouth College Ph.D Dissertations
Current quantum processors, at the intermediate scale of tens to hundreds of qubits, remain error-limited. This thesis studies two related sources of error. The first is environmental noise, which may have temporal and spatial correlations and nonclassical components. The second is state-preparation and measurement (SPAM) error, which arises in the operations used to characterize this noise, a prerequisite for boosting operational fidelities. Neither can be characterized alone. Noise spectroscopy techniques use imperfect preparation and readout, while SPAM characterization is affected by qubit decoherence. Our methods vary measurement depth, drive duration, or sequence repetition so each source changes the measured signal …
Electronic Structure Discretization And Compression Using Diagonal Basis Sets, Casey Lee Dowdle
Electronic Structure Discretization And Compression Using Diagonal Basis Sets, Casey Lee Dowdle
Dartmouth College Ph.D Dissertations
Numerically solving the electronic structure problem is a fundamentally difficult problem due to the exponential growth in the dimension of the Hilbert space as the system size increases. In order to solve problems at a chemically relevant accuracy, both the choice of basis set and numerical method are important factors that are intrinsically connected.
In this thesis, we study the discretization and resulting compression of electronic Hamiltonians using diagonal basis sets. A diagonal basis set approximately diagonalizes the matrix and tensor representations of the one- and two-body potentials. This can reduce storage, simplify matrix-vector products, and lower the complexity of …
Basis Design For Electronic Structure And Beyond, Weishi Wang
Basis Design For Electronic Structure And Beyond, Weishi Wang
Dartmouth College Ph.D Dissertations
At the intersection of quantum physics, quantum chemistry, and materials science, electronic structure is the study of electrons in solid-state and molecular systems. Electronic-structure computation relies on discretizing the many-electron Hamiltonian with a finite single-particle basis set. However, basis-set construction is conventionally treated as an ad hoc preprocessing step. This thesis develops an expressive and flexible framework for active, system-oriented basis-set design and numerical modeling strategies that treat basis functions as tunable representations to encode electronic ground-state information.
We first introduce a multi-layered, differentiable basis-construction framework that embeds a set of primitive parameters into mixed-contracted Gaussian-type orbitals. We then develop …
Quantum Mechanics As A Framework For Data Assimilation And Its Application To Atmospheric Parameterization, David Freeman
Quantum Mechanics As A Framework For Data Assimilation And Its Application To Atmospheric Parameterization, David Freeman
Dartmouth College Ph.D Dissertations
Quantum mechanics, as a mathematical system, can be understood as a generalization of classical probability theory. Quantum Mechanical Data Assimilation (QMDA) is a method in which classical dynamical systems are embedded into a quantum mechanical setting, with an associated data assimilation scheme leveraging the operator algebraic setting. In this dissertation, the algebraic structure underlying the operator theoretic formulation of QMDA is discussed. A procedure for closure of dynamical systems based on QMDA, known as Quantum Mechanical Closure (QMCl), is then constructed, and the procedures for constructing the quantum embeddings and implementing QMCl in practice are laid out and implemented for …
Entanglement-Assisted Metrology Under Spatiotemporally Correlated Quantum Noise, Francisco U. Riberi
Entanglement-Assisted Metrology Under Spatiotemporally Correlated Quantum Noise, Francisco U. Riberi
Dartmouth College Ph.D Dissertations
Quantum sensors operating at the microscale are an emerging branch of quantum technologies where tangible experimental successes have already been reported. State-of-the-art atomic interferometers allow to measure and estimate a variety of physical parameters with unprecedented precision. In principle, exploiting the full power of quantum mechanics would lead to quantitatively better performance bounds over the best possible classical strategies under the same given set of resource constraints. However, the quantum systems' fragility to external disturbances has so far hindered most of these gains to be reached in practice, particularly in the limit of large probe number $N$. Parallel, {\em purely …
Quantum Control And Simulation Using Hamiltonian Engineering In Solid-State Nmr, Linta Joseph
Quantum Control And Simulation Using Hamiltonian Engineering In Solid-State Nmr, Linta Joseph
Dartmouth College Ph.D Dissertations
Lattices of dipolar coupled nuclear spins in natural crystals are large, interacting quantum systems -- ideal platforms to simulate non-equilibrium many-body dynamics. Using the magnetic resonance toolkit, which includes Dynamic Nuclear Polarization (DNP), Hamiltonian engineering, and multiple-quantum Nuclear Magnetic Resonance (NMR) experiments, we study aspects of coherent control, manipulation, and readout of the complex dynamics of the spin system in NMR quantum simulation.
First, applying Hamiltonian engineering sequences, we control the system evolution. Specifically, we use a combination of numerical simulations and NMR experiments on adamantane to evaluate and compare the performance of several known sequences that aim to suppress …
Thermal Phase Fluctuations In Narrow Superfluid Rings, Parth Sabharwal
Thermal Phase Fluctuations In Narrow Superfluid Rings, Parth Sabharwal
Dartmouth College Ph.D Dissertations
Remarkable advances have been made in the past decade in the ability to control superfluids in circuit-like configurations. Especially notable are the improvements in the initialization, stabilization and measurement of the circulation of superfluids in geometries with periodic boundary conditions, such as rings. This has significant implications for applications as rotation sensors, magnetometers, and in the emerging field of atomtronics. As the push towards studying supercurrents in lower dimensions and higher aspect ratios continues, in order to realize idealized experimental conditions and explore unusual quantum phases, phase fluctuations become increasingly pronounced, with the potential to destroy long-range order. In this …
Probing Central Spin Decoherence Dynamics Of Electronic Point Defects In Diamond And Silicon, Ethan Que Williams
Probing Central Spin Decoherence Dynamics Of Electronic Point Defects In Diamond And Silicon, Ethan Que Williams
Dartmouth College Ph.D Dissertations
Electron spins of point defects in diamond and silicon can exhibit long coherence times, making them attractive platforms for the physical implementation of qubits for quantum sensing and quantum computing. To realize these technologies, it is essential to understand the mechanisms that limit their coherence. Decoherence of these systems is well described by the central spin model, wherein the central electron spin weakly interacts with numerous electron and nuclear spins in its environment. The dynamics of the resultant dephasing can be probed with pulse electron paramagnetic resonance (pEPR) experiments.
Using a 2.5 GHz pEPR spectrometer built in-house, we performed multi-pulse …
Effective Non-Hermiticity And Topology In Markovian Quadratic Bosonic Dynamics, Vincent Paul Flynn
Effective Non-Hermiticity And Topology In Markovian Quadratic Bosonic Dynamics, Vincent Paul Flynn
Dartmouth College Ph.D Dissertations
Recently, there has been an explosion of interest in re-imagining many-body quantum phenomena beyond equilibrium. One such effort has extended the symmetry-protected topological (SPT) phase classification of non-interacting fermions to driven and dissipative settings, uncovering novel topological phenomena that are not known to exist in equilibrium which may have wide-ranging applications in quantum science. Similar physics in non-interacting bosonic systems has remained elusive. Even at equilibrium, an "effective non-Hermiticity" intrinsic to bosonic Hamiltonians poses theoretical challenges. While this non-Hermiticity has been acknowledged, its implications have not been explored in-depth. Beyond this dynamical peculiarity, major roadblocks have arisen in the search …
Fermion Encodings And Algorithms For Quantum Simulation, Riley W. Chien
Fermion Encodings And Algorithms For Quantum Simulation, Riley W. Chien
Dartmouth College Ph.D Dissertations
The study of the properties of quantum mechanical systems of many particles occupies a central role in condensed matter physics, high-energy physics, and quantum chemistry. In recent decades, developments in quantum information theory have suggested that quantum computers could become an especially useful tool for studying such quantum systems.
In this thesis, we address the additional challenges for quantum simulations posed by particles which are fermionic in nature, namely those caused by the nonlocal fermionic statistics. In particular, we study the encodings of fermionic degrees of freedom into the qubits of a quantum computer. We focus on finding a scheme …
Machine Learning For Electronic And Atomistic Simulations, Jun Yang
Machine Learning For Electronic And Atomistic Simulations, Jun Yang
Dartmouth College Ph.D Dissertations
The demand for accurate and efficient atomistic simulations and electronic structure calculations in materials science and quantum chemistry has motivated the development of novel computational methodologies. The rapid evolution of machine learning has brought new techniques for advancing the accuracy, efficiency, and predictive power of atomistic simulations and electronic structure calculations.
In this thesis, we explore the symmetry requirements and physics intuitions needed for developing machine-learning interatomic potentials, which are the most critical component in atomistic simulations. Specifically, we introduce a novel physics-inspired graph neural network interatomic potential that enables accurate and efficient atomistic simulations of complex materials. The machine …
Approaching Quantum-Limited Electrometry In The Single-Photon Regime, Sisira Kanhirathingal
Approaching Quantum-Limited Electrometry In The Single-Photon Regime, Sisira Kanhirathingal
Dartmouth College Ph.D Dissertations
Mesoscopic quantum systems currently serve as essential building blocks in many quantum information and metrology devices. This thesis investigates the potential of quantum-limited detection in a mesoscopic electrometer named the cavity-embedded Cooper pair transistor (cCPT). As one application, this charge detector can act as the basis for an optomechanical system in the single-photon strong coupling regime. The realization of this scheme would entail near quantum-limited, ultra-sensitive electrometry at the single-photon level, the feasibility of which is studied at length in this thesis.
On the one hand, we approach this question using a fundamental, first-principles study, where an operator scattering model …
The Cavity-Embedded Cooper Pair Transistor As A Charge Detector Operating In The Nonlinear Regime, Bhargava Thyagarajan
The Cavity-Embedded Cooper Pair Transistor As A Charge Detector Operating In The Nonlinear Regime, Bhargava Thyagarajan
Dartmouth College Ph.D Dissertations
The cavity-embedded Cooper pair transistor (cCPT) has been shown to be a nearly quantum limited charge detector operating with only a single intracavity photon. Here, we use the inherent Kerr nonlinearity to demonstrate a dispersive charge sensing technique inspired by the Josephson bifurcation amplifier. Operating in the bistable regime close to a bifurcation edge, the cCPT is sensitive to charge shifts of 0.09e in a single-shot readout scheme with a detection time of 3 μs and a detection fidelity of 94%. The readout is implemented with only ∼ 25 intracavity photons in the high oscillation amplitude state, still several orders …