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Leveraging Nanomaterials for Measurements at the Quantum Limit
Leveraging Nanomaterials for Measurements at the Quantum Limit
Leveraging Nanomaterials for Measurements at the Quantum Limit

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자료유형  
 학위논문 서양
최종처리일시  
20260202103124
ISBN  
9798314899144
DDC  
535
저자명  
Bartos, Jan.
서명/저자  
Leveraging Nanomaterials for Measurements at the Quantum Limit
발행사항  
[Sl] : University of Colorado at Boulder, 2025
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2025
형태사항  
155 p
주기사항  
Source: Dissertations Abstracts International, Volume: 86-11, Section: B.
주기사항  
Advisor: Huang, Shu-Wei.
학위논문주기  
Thesis (Ph.D.)--University of Colorado at Boulder, 2025.
초록/해제  
요약This dissertation reports on sensing enhancements enabled by nanomaterials, focusing on two areas: magnetic field sensing and imaging, and fluorescence microscopy. In both domains, we find that nanomaterials lead to sensors which outperform bulk and microscale materials.Motivating the magnetic field sensing project, we observed that most existing magnetic field sensing techniques follow a trend where their magnetic field sensitivity is inversely proportional to sensor volume. This presents a challenge when attempting to perform high-sensitivity, spatially resolved magnetic field measurements.The primary research question investigates whether this paradigm could be broken. Because the sensitivity of Faraday rotation magnetometry (FRM) depends on optical power rather than intensity, magnetic field sensitivity to be decoupled from spot size.To leverage this benefit, two key improvements were required. First, we developed a new material to enhance sensitivity potential. Second, we optimized the sensing architecture to maximize performance using this newly developed transducer. We discovered that a nanocomposite of terbium-doped magnetite nanoparticles embedded in a polymer host produced an extremely high Verdet constant while maintaining good optical clarity. However, the material exhibited a low optical damage threshold, which limited performance when tightly focused optical spots were used. Since magnetic field sensitivity can be improved by increasing optical power, this low optical damage threshold posed a problem.To address this issue, we employed a non-common path heterodyne detection scheme. This approach allowed most of the light to bypass the sample, reducing illumination power while mixing the beams on the detector. This amplified the signal above the electronic noise floor, enabling shot-noise-limited measurements even with low optical illumination power. Using this method, we achieved a sensitivity of 568 nT/ √ Hz in our magnetometer.Further exploration, inspired by polarization-sensitive optical coherence tomography, led us to propose an alternative and novel detection architecture called dual-balanced heterodyne detection (DBHD). This approach altered the power scaling of the measurement, providing additional signal amplification at low magnetic fields. This technique initially had potential to achieve pT/Hz sensitivity. A proof-of-concept device was implemented to validate the hypothesis. However, after extensive experimental work, I concluded that the sensitivity potential was not realizable due to nonlinear scaling of the noise. Though we explore some potential advantages of the technique.The final part of this dissertation investigates the use of upconversion nanoparticles (UCNPs). These particles are employed in fluorescence microscopy, an imaging technique commonly used in biology to stain samples. UCNPs convert two low-energy photons into one higher-energy photon, enabling background-free measurements because the illumination light differs from the detection light. However, UCNPs are limited by their low photon absorption probability.We hypothesized that the brightness of UCNPs could be increased using paired photons to enable instantaneous upconversion attempts. A rate-equation model was developed to simulate the dynamics of the nanoparticles. We found that the threshold for brightness enhancement between biphoton and conventional illumination depends on the lifetime of singly excited electrons. In our material, this lifetime is on the order of milliseconds. The threshold for enhancement was so low that it would produce fewer than one photon per second, rendering experimental pursuit impractical.In summary, this dissertation examines two different systems, both with imaging applications, that leverage the properties of nanoparticles to enhance sensing. The magnetite nanoparticles enabled highly sensitive measurements when combined with a novel detection configuration. Meanwhile, the UCNP nanoparticles proved too efficient to justify the use of paired photon sources for illumination, as their performance could not be practically enhanced.
일반주제명  
Optics
일반주제명  
Electrical engineering
일반주제명  
Electromagnetics
일반주제명  
Nanoscience
키워드  
Fluorescence
키워드  
Imaging
키워드  
Magnetics
키워드  
Nanoparticles
키워드  
Magnetic field sensing
기타저자  
University of Colorado at Boulder Electrical Engineering
기본자료저록  
Dissertations Abstracts International. 86-11B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aBartos,  Jan.▼0(orcid)0009-0007-8440-6225
■24510▼aLeveraging  Nanomaterials  for  Measurements  at  the  Quantum  Limit
■260    ▼a[Sl]▼bUniversity  of  Colorado  at  Boulder▼c2025
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2025
■300    ▼a155  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-11,  Section:  B.
■500    ▼aAdvisor:  Huang,  Shu-Wei.
■5021  ▼aThesis  (Ph.D.)--University  of  Colorado  at  Boulder,  2025.
■520    ▼aThis  dissertation  reports  on  sensing  enhancements  enabled  by  nanomaterials,  focusing  on  two  areas:  magnetic  field  sensing  and  imaging,  and  fluorescence  microscopy.  In  both  domains,  we  find  that  nanomaterials  lead  to  sensors  which  outperform  bulk  and  microscale  materials.Motivating  the  magnetic  field  sensing  project,  we  observed  that  most  existing  magnetic  field  sensing  techniques  follow  a  trend  where  their  magnetic  field  sensitivity  is  inversely  proportional  to  sensor  volume.  This  presents  a  challenge  when  attempting  to  perform  high-sensitivity,  spatially  resolved  magnetic  field  measurements.The  primary  research  question  investigates  whether  this  paradigm  could  be  broken.  Because  the  sensitivity  of  Faraday  rotation  magnetometry  (FRM)  depends  on  optical  power  rather  than  intensity,  magnetic  field  sensitivity  to  be  decoupled  from  spot  size.To  leverage  this  benefit,  two  key  improvements  were  required.  First,  we  developed  a  new  material  to  enhance  sensitivity  potential.  Second,  we  optimized  the  sensing  architecture  to  maximize  performance  using  this  newly  developed  transducer. We  discovered  that  a  nanocomposite  of  terbium-doped  magnetite  nanoparticles  embedded  in  a  polymer  host  produced  an  extremely  high  Verdet  constant  while  maintaining  good  optical  clarity.  However,  the  material  exhibited  a  low  optical  damage  threshold,  which  limited  performance  when  tightly  focused  optical  spots  were  used.  Since  magnetic  field  sensitivity  can  be  improved  by  increasing  optical  power,  this  low  optical  damage  threshold  posed  a  problem.To  address  this  issue,  we  employed  a  non-common  path  heterodyne  detection  scheme.  This  approach  allowed  most  of  the  light  to  bypass  the  sample,  reducing  illumination  power  while  mixing  the  beams  on  the  detector.  This  amplified  the  signal  above  the  electronic  noise  floor,  enabling  shot-noise-limited  measurements  even  with  low  optical  illumination  power.  Using  this  method,  we  achieved  a  sensitivity  of  568  nT/  √  Hz  in  our  magnetometer.Further  exploration,  inspired  by  polarization-sensitive  optical  coherence  tomography,  led  us  to  propose  an  alternative  and  novel  detection  architecture  called  dual-balanced  heterodyne  detection  (DBHD).  This  approach  altered  the  power  scaling  of  the  measurement,  providing  additional  signal  amplification  at  low  magnetic  fields.  This  technique  initially  had  potential  to  achieve  pT/Hz  sensitivity.  A  proof-of-concept  device  was  implemented  to  validate  the  hypothesis.  However,  after  extensive  experimental  work,  I  concluded  that  the  sensitivity  potential  was  not  realizable  due  to  nonlinear  scaling  of  the  noise.  Though  we  explore  some  potential  advantages  of  the  technique.The  final  part  of  this  dissertation  investigates  the  use  of  upconversion  nanoparticles  (UCNPs).  These  particles  are  employed  in  fluorescence  microscopy,  an  imaging  technique  commonly  used  in  biology  to  stain  samples.  UCNPs  convert  two  low-energy  photons  into  one  higher-energy  photon,  enabling  background-free  measurements  because  the  illumination  light  differs  from  the  detection  light.  However,  UCNPs  are  limited  by  their  low  photon  absorption  probability.We  hypothesized  that  the  brightness  of  UCNPs  could  be  increased  using  paired  photons  to  enable  instantaneous  upconversion  attempts.  A  rate-equation  model  was  developed  to  simulate  the  dynamics  of  the  nanoparticles.  We  found  that  the  threshold  for  brightness  enhancement  between  biphoton  and  conventional  illumination  depends  on  the  lifetime  of  singly  excited  electrons.  In  our  material,  this  lifetime  is  on  the  order  of  milliseconds.  The  threshold  for  enhancement  was  so  low  that  it  would  produce  fewer  than  one  photon  per  second,  rendering  experimental  pursuit  impractical.In  summary,  this  dissertation  examines  two  different  systems,  both  with  imaging  applications,  that  leverage  the  properties  of  nanoparticles  to  enhance  sensing.  The  magnetite  nanoparticles  enabled  highly  sensitive  measurements  when  combined  with  a  novel  detection  configuration.  Meanwhile,  the  UCNP  nanoparticles  proved  too  efficient  to  justify  the  use  of  paired  photon  sources  for  illumination,  as  their  performance  could  not  be  practically  enhanced.
■590    ▼aSchool  code:  0051.
■650  4▼aOptics
■650  4▼aElectrical  engineering
■650  4▼aElectromagnetics
■650  4▼aNanoscience
■653    ▼aFluorescence
■653    ▼aImaging
■653    ▼aMagnetics
■653    ▼aNanoparticles
■653    ▼aMagnetic  field  sensing  
■690    ▼a0752
■690    ▼a0544
■690    ▼a0607
■690    ▼a0565
■71020▼aUniversity  of  Colorado  at  Boulder▼bElectrical  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g86-11B.
■790    ▼a0051
■791    ▼aPh.D.
■792    ▼a2025
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17357060▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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