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The First Pieces of the Gravitational-Wave Progenitor Population Puzzle- [electronic resource]
The First Pieces of the Gravitational-Wave Progenitor Population Puzzle - [electronic reso...
The First Pieces of the Gravitational-Wave Progenitor Population Puzzle- [electronic resource]

상세정보

자료유형  
 학위논문파일 국외
최종처리일시  
20240214100440
ISBN  
9798379603847
DDC  
520
저자명  
van Son, Angelieke Anna Catharina.
서명/저자  
The First Pieces of the Gravitational-Wave Progenitor Population Puzzle - [electronic resource]
발행사항  
[S.l.]: : Harvard University., 2023
발행사항  
Ann Arbor : : ProQuest Dissertations & Theses,, 2023
형태사항  
1 online resource(304 p.)
주기사항  
Source: Dissertations Abstracts International, Volume: 84-12, Section: B.
주기사항  
Advisor: Conroy, Charlie;de Mink, Selma.
학위논문주기  
Thesis (Ph.D.)--Harvard University, 2023.
사용제한주기  
This item must not be sold to any third party vendors.
초록/해제  
요약The first gravitational wave (GW) observation marked a monumental moment in science and heralded the birth of a new field: GW astronomy. Since then, the field has rapidly developed, with about 90 mergers of binary black Hole (BBH), black hole neutron star (BHNS), and binary neutron star (NSNS) mergers observed to date. This number is set to triple in the next few years, with millions of detections anticipated in the following decade. How do these merging double compact objects form? Each detection adds a new piece to the puzzle of their origins, moving us from a phase of initial discovery into an era of population studies. Many different formation channels have been proposed to solve this 'progenitor population puzzle', but all depend crucially on their direct ancestors: massive stars. Massive binary stars impact nearly every part of modern astrophysics, as they shape our Universe through the elements and ionizing radiation they emit. However, these stars are challenging to study while alive as they are intrinsically rare and live short lives. This raises a second question: (what) can GW sources teach us about the lives and deaths of their stellar progenitors?In this thesis, we aim to shed light on this question by analyzing the early population results of GW sources that make up the first pieces of the progenitor puzzle. We apply a combination of numerical population synthesis models and analytical models to develop an intuitive understanding of the complex phenomena that govern the evolution of massive stars, and ultimately lead to the formation of double compact objects.The first puzzle piece is the notable structure that emerged in the mass distribution of merging BBHs. Observations have revealed a 'bump', followed by a low but non-zero rate of mergers with components ≳ 35 M⊙. This has been linked to the theoretical prediction of a 'mass gap' caused by Pair Instability Supernovae (PISN). We show that the contribution of isolated binaries to form BBH mergers in this mass gap is negligible, even under extreme assumptions about mass accretion. This points towards dynamical formation channels for BBHs in this mass range. We furthermore provide the first quantitative study into the origin of the global peak of the BBH mass distribution, and find that it results naturally from the stable Roche-lobe overflow channel. The reason behind this lies in a characteristic of this channel: it cannot form BBH mergers below a certain mass. This also provides an alternative explanation for the much disputed 'neutron star-black hole mass gap' if observed in GW sources. More clues follow from the evolution of the BBH merger rate with redshift, which is determined by the delay-time distribution of its formation channel. We identify unique delay time-mass relationships for the two main isolated binary evolution channels and provide testable predictions for the redshift evolution for the BBH merger rates from each channel. Lastly, we investigate how our model predictions are affected by the metallicity-dependent cosmic star formation history. We present a new functional form for the latter and determine that it will not shift the location of features such as those discussed above. This is exciting as it suggests that these features indeed have the potential to reveal the underlying physics of their stellar progenitors.
일반주제명  
Astronomy.
일반주제명  
Astrophysics.
키워드  
Binary stars
키워드  
Black holes
키워드  
Gravitational waves
키워드  
Massive stars
키워드  
Population synthesis
키워드  
Star formation
기타저자  
Harvard University Astronomy
기본자료저록  
Dissertations Abstracts International. 84-12B.
기본자료저록  
Dissertation Abstract International
전자적 위치 및 접속  
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MARC

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■035    ▼a(MiAaPQ)AAI30491217
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a520
■1001  ▼avan  Son,  Angelieke  Anna  Catharina.▼0(orcid)0000-0001-5484-4987
■24510▼aThe  First  Pieces  of  the  Gravitational-Wave  Progenitor  Population  Puzzle▼h[electronic  resource]
■260    ▼a[S.l.]:▼bHarvard  University.  ▼c2023
■260  1▼aAnn  Arbor  :▼bProQuest  Dissertations  &  Theses,  ▼c2023
■300    ▼a1  online  resource(304  p.)
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  84-12,  Section:  B.
■500    ▼aAdvisor:  Conroy,  Charlie;de  Mink,  Selma.
■5021  ▼aThesis  (Ph.D.)--Harvard  University,  2023.
■506    ▼aThis  item  must  not  be  sold  to  any  third  party  vendors.
■520    ▼aThe  first  gravitational  wave  (GW)  observation  marked  a  monumental  moment  in  science  and  heralded  the  birth  of  a  new  field:  GW  astronomy.  Since  then,  the  field  has  rapidly  developed,  with  about  90  mergers  of  binary  black  Hole  (BBH),  black  hole  neutron  star  (BHNS),  and  binary  neutron  star  (NSNS)  mergers  observed  to  date.  This  number  is  set  to  triple  in  the  next  few  years,  with  millions  of  detections  anticipated  in  the  following  decade.  How  do  these  merging  double  compact  objects  form?  Each  detection  adds  a  new  piece  to  the  puzzle  of  their  origins,  moving  us  from  a  phase  of  initial  discovery  into  an  era  of  population  studies.  Many  different  formation  channels  have  been  proposed  to  solve  this  'progenitor  population  puzzle',  but  all  depend  crucially  on  their  direct  ancestors:  massive  stars.  Massive  binary  stars  impact  nearly  every  part  of  modern  astrophysics,  as  they  shape  our  Universe  through  the  elements  and  ionizing  radiation  they  emit.  However,  these  stars  are  challenging  to  study  while  alive  as  they  are  intrinsically  rare  and  live  short  lives.  This  raises  a  second  question:  (what)  can  GW  sources  teach  us  about  the  lives  and  deaths  of  their  stellar  progenitors?In  this  thesis,  we  aim  to  shed  light  on  this  question  by  analyzing  the  early  population  results  of  GW  sources  that  make  up  the  first  pieces  of  the  progenitor  puzzle.  We  apply  a  combination  of  numerical  population  synthesis  models  and  analytical  models  to  develop  an  intuitive  understanding  of  the  complex  phenomena  that  govern  the  evolution  of  massive  stars,  and  ultimately  lead  to  the  formation  of  double  compact  objects.The  first  puzzle  piece  is  the  notable  structure  that  emerged  in  the  mass  distribution  of  merging  BBHs.  Observations  have  revealed  a  'bump',  followed  by  a  low  but  non-zero  rate  of  mergers  with  components  ≳  35  M⊙.  This  has  been  linked  to  the  theoretical  prediction  of  a  'mass  gap'  caused  by  Pair  Instability  Supernovae  (PISN).  We  show  that  the  contribution  of  isolated  binaries  to  form  BBH  mergers  in  this  mass  gap  is  negligible,  even  under  extreme  assumptions  about  mass  accretion.  This  points  towards  dynamical  formation  channels  for  BBHs  in  this  mass  range.  We  furthermore  provide  the  first  quantitative  study  into  the  origin  of  the  global  peak  of  the  BBH  mass  distribution,  and  find  that  it  results  naturally  from  the  stable  Roche-lobe  overflow  channel.  The  reason  behind  this  lies  in  a  characteristic  of  this  channel:  it  cannot  form  BBH  mergers  below  a  certain  mass.  This  also  provides  an  alternative  explanation  for  the  much  disputed  'neutron  star-black  hole  mass  gap'  if  observed  in  GW  sources.  More  clues  follow  from  the  evolution  of  the  BBH  merger  rate  with  redshift,  which  is  determined  by  the  delay-time  distribution  of  its  formation  channel.  We  identify  unique  delay  time-mass  relationships  for  the  two  main  isolated  binary  evolution  channels  and  provide  testable  predictions  for  the  redshift  evolution  for  the  BBH  merger  rates  from  each  channel.  Lastly,  we  investigate  how  our  model  predictions  are  affected  by  the  metallicity-dependent  cosmic  star  formation  history.  We  present  a  new  functional  form  for  the  latter  and  determine  that  it  will  not  shift  the  location  of  features  such  as  those  discussed  above.  This  is  exciting  as  it  suggests  that  these  features  indeed  have  the  potential  to  reveal  the  underlying  physics  of  their  stellar  progenitors.
■590    ▼aSchool  code:  0084.
■650  4▼aAstronomy.
■650  4▼aAstrophysics.
■653    ▼aBinary  stars
■653    ▼aBlack  holes
■653    ▼aGravitational  waves
■653    ▼aMassive  stars
■653    ▼aPopulation  synthesis
■653    ▼aStar  formation
■690    ▼a0606
■690    ▼a0596
■71020▼aHarvard  University▼bAstronomy.
■7730  ▼tDissertations  Abstracts  International▼g84-12B.
■773    ▼tDissertation  Abstract  International
■790    ▼a0084
■791    ▼aPh.D.
■792    ▼a2023
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T16932302▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.
■980    ▼a202402▼f2024

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