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Light-matter Interaction from Atomistic Rare-Earth Centers in Solids to Massive Levitated Objects- [electronic resource]
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Light-matter Interaction from Atomistic Rare-Earth Centers in Solids to Massive Levitated Objects- [electronic resource]
자료유형  
 학위논문
Control Number  
0016932846
International Standard Book Number  
9798379851835
Dewey Decimal Classification Number  
530
Main Entry-Personal Name  
Jiang, Xiaodong.
Publication, Distribution, etc. (Imprint  
[S.l.] : Purdue University., 2022
Publication, Distribution, etc. (Imprint  
Ann Arbor : ProQuest Dissertations & Theses, 2022
Physical Description  
1 online resource(135 p.)
General Note  
Source: Dissertations Abstracts International, Volume: 85-01, Section: B.
General Note  
Advisor: Hosseini, Mahdi.
Dissertation Note  
Thesis (Ph.D.)--Purdue University, 2022.
Restrictions on Access Note  
This item must not be sold to any third party vendors.
Summary, Etc.  
요약A harmonic oscillator is a ubiquitous tool in various disciplines of engineering and physics for sensing and energy transduction. The degrees of freedom, low noise oscillation, and efficient input-output coupling are important metrics when designing sensors and transducers using such oscillators. The ultimate examples of such oscillators are quantum mechanical oscillators coherently transducing information or energy. Atoms are oscillators whose degrees of freedom can be controlled and probed coherently by means of light. Elegant techniques developed during the last few decades have enabled us to use atoms, for example, to build exquisite quantum sensors such as clocks with the precision of 1 second error over the lifetime of the universe, to store and transduce information of various forms and also to develop quantum processors. Similar to atoms, mechanical oscillators can also be controlled ultimately to their single vibrational quanta and be used for similar sensing and transduction applications.In this thesis, we explore both atomic and mechanical systems and develop a toolbox to build an effective atom-light interface and light-oscillator interface for controlling such atomic and mechanical oscillators and use them in sensing and storage applications. Primarily, we study two disparate platforms: 1) rare-earth ions in solids integrated into photonic chips as a compact and heterogeneous platform and 2) nanoscopic and macroscopic oscillators interfaced with light and magnetic field to isolate them from environmental noise.Rare earth (RE) ions in crystals have been identified as robust optical centers and promising candidates for quantum communication and transduction applications. Lithium niobate (LN), a novel crystalline host of RE ions, is considered as a viable material for photonic system integration because of its electro-optic and integration capability. This thesis first experimentally reports the activation and characterization of LN crystals implanted with Yb and Er ions and describes their scalable integration with a silicon photonic chip with waveguide and resonator structures. The evanescent coupling of light emitted from Er ions with optical modes of waveguide and microcavity and modified photoluminescence (PL) of Er ions from the integrated on-chip Er:LN-Si-SiN photonic device with quality factor of 104have been observed at room temperature. This integrated platform can ultimately enable developing quantum memory and provide a path to integrate more photonic components on a single chip for applications in quantum communication and transduction.Optomechanical systems are also considered as candidates for light storage and sensing. In this thesis, we also present results of the theoretical study of coherent light storage in an array of nanomechanical resonators. The majority of the thesis is focusing on an optomechanical sensing experiment based on levitation. An oscillator well isolated from environmental noise can be used to sense force, inertia, torque, and magnetic field with high sensitivity as the interaction with these quantities can change the amplitude or frequency of the oscillator's vibration, which can be accurately measured by light. It has been proposed that such levitated macroscopic objects could be used as quantum sensors and transducers at their quantum ground states. They are also proposed as a platform to test fundamental physics such as detecting gravitational waves, observing macroscopic quantum entanglement, verifying the spontaneous collapse models, and searching for dark matter.
Subject Added Entry-Topical Term  
Physics.
Subject Added Entry-Topical Term  
Cooling.
Subject Added Entry-Topical Term  
Communication.
Subject Added Entry-Topical Term  
Lasers.
Subject Added Entry-Topical Term  
Magnetic fields.
Subject Added Entry-Topical Term  
Sensors.
Subject Added Entry-Topical Term  
Signal processing.
Subject Added Entry-Topical Term  
Microscopy.
Subject Added Entry-Topical Term  
Oscillators.
Subject Added Entry-Topical Term  
Gravitational waves.
Subject Added Entry-Topical Term  
Energy.
Subject Added Entry-Topical Term  
Spectrum allocation.
Subject Added Entry-Topical Term  
Crystals.
Subject Added Entry-Topical Term  
Lithium.
Subject Added Entry-Topical Term  
Atoms & subatomic particles.
Subject Added Entry-Topical Term  
Vibration.
Subject Added Entry-Topical Term  
Astrophysics.
Subject Added Entry-Topical Term  
Atomic physics.
Subject Added Entry-Topical Term  
Electrical engineering.
Subject Added Entry-Topical Term  
Electromagnetics.
Subject Added Entry-Topical Term  
Optics.
Subject Added Entry-Topical Term  
Theoretical physics.
Added Entry-Corporate Name  
Purdue University.
Host Item Entry  
Dissertations Abstracts International. 85-01B.
Host Item Entry  
Dissertation Abstract International
Electronic Location and Access  
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Control Number  
joongbu:644021
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