SlideShare a Scribd company logo
1 of 22
Double occupancy as a probe of the Mott state for fermions in one-dimensional optical lattices VIVALDO L. CAMPO, JR (1), KLAUS CAPELLE (2), CHRIS HOOLEY (3), JORGE QUINTANILLA (4,5), and VITO W. SCAROLA (6) (1) UFSCar, Brazil, (2) UFABC, Brazil, (3) SUPA and University of St Andrews, UK, (4) SEPnet and Hubbard Theory Consortium, University of Kent, (5) ISIS Facility, Rutherford Appleton Laboratory,  and (6) Virginia Tech, USA arxiv.org:1107.4349 UK Cold Atom/Condensed Matter Network Meetings, Nottingham, 7 September 2011
Context: Experiments on 3D Hubbard model Experimental evidence for the Mott transition: U. Schneider, L. Hackermuller, S. Will, Th. Best, I. Bloch, T. A. Costi, R. W. Helmes, D. Rasch, A. Rosch, Science322, 1520-1525 (2008). Robert Jordens, NielsStrohmaier, Kenneth Gunter, Henning Moritz & TilmanEsslinger, Nature 455, 204-208 (2008).
Problem:What will happen in 1D? Hamiltonian: Evaluate double occupancy:
Effect of the trap – no fluctuations
Effect of the trap – no fluctuations D Mott insulator Band +Mott Band insulator D
Ground state – no trap U / t f Mott insulator: 0 1 2 Luttinger Liquid Elliott H. Lieb and F. Y. Wu,  Phys. Rev. Lett. 20, 1445 (1968); 21, 192 (1968).
Ground state – no trap U / t f Mott insulator: 0 1 2 Luttinger Liquid Elliott H. Lieb and F. Y. Wu,  Phys. Rev. Lett. 20, 1445 (1968); 21, 192 (1968).
Ground state - harmonic trap
Ground state - harmonic trap Evaluate D in the local density approximation:
Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2)
Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2)
Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
Finite temperature – no trap Use high-temperature expansion: 	(must go at least to 2nd order) Double occupancy: =                       +                                 + ...
Finite temperature – no trap Match to low-T expansion from quantum transfer method [Klümper and Bariev 1996] Obtain C(x) is the unity central charge from CFT for the Hesienberg universality class:
Finite temperature – no trap
Finite temperature – no trap Very good match between high-T and low-T expansions.
Finite temperature – no trap Very good match between high-T and low-T expansions. d vs T is non-monotonic (suggests cooling mechanism with 1D system as reference state)
Finite temperature – no trap Very good match between high-T and low-T expansions. d vs T is non-monotonic (suggests cooling mechanism with 1D system as reference state) A local picture accounts well for the observed behaviour:
Quantum fluctuations + thermal fluctuations + trap
In summary... Fermionic Hubbard model in one dimension. Mott phase has inherent double occupancy fluctuations. Mott phase detectable via double occupancy. Can read out double occupancy in the bulk from the trapped data.  Non-monotonic temperature dependence a universal, local feature.  THANKS! arxiv.org:1107.4349

More Related Content

Similar to Doulbe Occupancy as a Probe of the Mott Transition for Fermions in One-dimensional Optical Lattices

636902main kwiat presentation
636902main kwiat presentation636902main kwiat presentation
636902main kwiat presentation
Clifford Stone
 
Hypersonic high enthalpy flow in a leading-edge separation
Hypersonic high enthalpy flow in a leading-edge separationHypersonic high enthalpy flow in a leading-edge separation
Hypersonic high enthalpy flow in a leading-edge separation
Deepak Ramanath, PhD
 
2_prats_IGARSS2011_distributed_imaging_v4.ppt
2_prats_IGARSS2011_distributed_imaging_v4.ppt2_prats_IGARSS2011_distributed_imaging_v4.ppt
2_prats_IGARSS2011_distributed_imaging_v4.ppt
grssieee
 
Mfht4 Orleans
Mfht4 OrleansMfht4 Orleans
Mfht4 Orleans
agardez
 
picard_poster_16
picard_poster_16picard_poster_16
picard_poster_16
ellopuppett
 

Similar to Doulbe Occupancy as a Probe of the Mott Transition for Fermions in One-dimensional Optical Lattices (20)

Huterer_UM_colloq
Huterer_UM_colloqHuterer_UM_colloq
Huterer_UM_colloq
 
High-throughput computation and machine learning methods applied to materials...
High-throughput computation and machine learning methods applied to materials...High-throughput computation and machine learning methods applied to materials...
High-throughput computation and machine learning methods applied to materials...
 
Quantum information probes
Quantum information probes Quantum information probes
Quantum information probes
 
THz Plasmonics
THz PlasmonicsTHz Plasmonics
THz Plasmonics
 
Combining density functional theory calculations, supercomputing, and data-dr...
Combining density functional theory calculations, supercomputing, and data-dr...Combining density functional theory calculations, supercomputing, and data-dr...
Combining density functional theory calculations, supercomputing, and data-dr...
 
636902main kwiat presentation
636902main kwiat presentation636902main kwiat presentation
636902main kwiat presentation
 
Fractional approaches in dielectric broadband spectroscopy
Fractional approaches in dielectric broadband spectroscopyFractional approaches in dielectric broadband spectroscopy
Fractional approaches in dielectric broadband spectroscopy
 
Biermann clusters
Biermann clustersBiermann clusters
Biermann clusters
 
this is density functional theory in pdf
this is density functional theory in pdfthis is density functional theory in pdf
this is density functional theory in pdf
 
Hypersonic high enthalpy flow in a leading-edge separation
Hypersonic high enthalpy flow in a leading-edge separationHypersonic high enthalpy flow in a leading-edge separation
Hypersonic high enthalpy flow in a leading-edge separation
 
Highly efficient organic devices.
Highly efficient organic devices.Highly efficient organic devices.
Highly efficient organic devices.
 
Reno Lecoustre Et Al
Reno Lecoustre Et AlReno Lecoustre Et Al
Reno Lecoustre Et Al
 
Models of neuronal populations
Models of neuronal populationsModels of neuronal populations
Models of neuronal populations
 
2_prats_IGARSS2011_distributed_imaging_v4.ppt
2_prats_IGARSS2011_distributed_imaging_v4.ppt2_prats_IGARSS2011_distributed_imaging_v4.ppt
2_prats_IGARSS2011_distributed_imaging_v4.ppt
 
Mfht4 Orleans
Mfht4 OrleansMfht4 Orleans
Mfht4 Orleans
 
picard_poster_16
picard_poster_16picard_poster_16
picard_poster_16
 
Presentation
PresentationPresentation
Presentation
 
Francisco Guinea-Recent advances in graphene research
Francisco Guinea-Recent advances in graphene researchFrancisco Guinea-Recent advances in graphene research
Francisco Guinea-Recent advances in graphene research
 
Discovering advanced materials for energy applications: theory, high-throughp...
Discovering advanced materials for energy applications: theory, high-throughp...Discovering advanced materials for energy applications: theory, high-throughp...
Discovering advanced materials for energy applications: theory, high-throughp...
 
ON OPTIMIZATION OF MANUFACTURING OF MULTICHANNEL HETEROTRANSISTORS TO INCREAS...
ON OPTIMIZATION OF MANUFACTURING OF MULTICHANNEL HETEROTRANSISTORS TO INCREAS...ON OPTIMIZATION OF MANUFACTURING OF MULTICHANNEL HETEROTRANSISTORS TO INCREAS...
ON OPTIMIZATION OF MANUFACTURING OF MULTICHANNEL HETEROTRANSISTORS TO INCREAS...
 

More from Jorge Quintanilla

Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
Jorge Quintanilla
 
Broken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
Broken Time-Reversal Symmetry and Topological Order in Triplet SuperconductorsBroken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
Broken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
Jorge Quintanilla
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
Jorge Quintanilla
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
Jorge Quintanilla
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
Jorge Quintanilla
 
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
Jorge Quintanilla
 
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Jorge Quintanilla
 
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in thenon-centrosymmetric superconductor LaNiC2Puzzling pairing in thenon-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Jorge Quintanilla
 

More from Jorge Quintanilla (18)

Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
Principal Component Analysis of Quantum Materials Data: a Study in Augmented ...
 
Time-reversal symmetry breaking in superconductors through loop Josephson-cur...
Time-reversal symmetry breaking in superconductors through loop Josephson-cur...Time-reversal symmetry breaking in superconductors through loop Josephson-cur...
Time-reversal symmetry breaking in superconductors through loop Josephson-cur...
 
Experimental implications of the entanglement transition in clustered quantum...
Experimental implications of the entanglement transition in clustered quantum...Experimental implications of the entanglement transition in clustered quantum...
Experimental implications of the entanglement transition in clustered quantum...
 
New Broken Time-reversal Symmetry Superconductors: Theoretical Constraints on...
New Broken Time-reversal Symmetry Superconductors: Theoretical Constraints on...New Broken Time-reversal Symmetry Superconductors: Theoretical Constraints on...
New Broken Time-reversal Symmetry Superconductors: Theoretical Constraints on...
 
Broken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
Broken Time-Reversal Symmetry and Topological Order in Triplet SuperconductorsBroken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
Broken Time-Reversal Symmetry and Topological Order in Triplet Superconductors
 
Thermodynamic signatures of topological transitions in nodal superconductors
Thermodynamic signatures of topological transitions in nodal superconductorsThermodynamic signatures of topological transitions in nodal superconductors
Thermodynamic signatures of topological transitions in nodal superconductors
 
Talk bristol uk-nl_2013_v01_for_web
Talk bristol uk-nl_2013_v01_for_webTalk bristol uk-nl_2013_v01_for_web
Talk bristol uk-nl_2013_v01_for_web
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
 
Talk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_webTalk kent symposium_2013_v01_for_web
Talk kent symposium_2013_v01_for_web
 
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
 
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011SEPnet Atomic and Condensed Matter research theme, 27 June 2011
SEPnet Atomic and Condensed Matter research theme, 27 June 2011
 
Turning data into a puzzle: non-unitary triplet pairing in the non-centrosym...
Turning data into a puzzle:  non-unitary triplet pairing in the non-centrosym...Turning data into a puzzle:  non-unitary triplet pairing in the non-centrosym...
Turning data into a puzzle: non-unitary triplet pairing in the non-centrosym...
 
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
 
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
 
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
Puzzling pairing in thenon-centrosymmetric superconductor LaNiC2Puzzling pairing in thenon-centrosymmetric superconductor LaNiC2
Puzzling pairing in the non-centrosymmetric superconductor LaNiC2
 
New Vistas on Quantum Matter Opened by Dipolar Fermions
New Vistas on Quantum Matter Opened by Dipolar FermionsNew Vistas on Quantum Matter Opened by Dipolar Fermions
New Vistas on Quantum Matter Opened by Dipolar Fermions
 
2010 Quintanilla Loughborough
2010 Quintanilla Loughborough2010 Quintanilla Loughborough
2010 Quintanilla Loughborough
 

Recently uploaded

Architecting Cloud Native Applications
Architecting Cloud Native ApplicationsArchitecting Cloud Native Applications
Architecting Cloud Native Applications
WSO2
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Safe Software
 

Recently uploaded (20)

Mastering MySQL Database Architecture: Deep Dive into MySQL Shell and MySQL R...
Mastering MySQL Database Architecture: Deep Dive into MySQL Shell and MySQL R...Mastering MySQL Database Architecture: Deep Dive into MySQL Shell and MySQL R...
Mastering MySQL Database Architecture: Deep Dive into MySQL Shell and MySQL R...
 
Data Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt RobisonData Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt Robison
 
DBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor PresentationDBX First Quarter 2024 Investor Presentation
DBX First Quarter 2024 Investor Presentation
 
presentation ICT roal in 21st century education
presentation ICT roal in 21st century educationpresentation ICT roal in 21st century education
presentation ICT roal in 21st century education
 
MINDCTI Revenue Release Quarter One 2024
MINDCTI Revenue Release Quarter One 2024MINDCTI Revenue Release Quarter One 2024
MINDCTI Revenue Release Quarter One 2024
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of Terraform
 
Strategies for Unlocking Knowledge Management in Microsoft 365 in the Copilot...
Strategies for Unlocking Knowledge Management in Microsoft 365 in the Copilot...Strategies for Unlocking Knowledge Management in Microsoft 365 in the Copilot...
Strategies for Unlocking Knowledge Management in Microsoft 365 in the Copilot...
 
Polkadot JAM Slides - Token2049 - By Dr. Gavin Wood
Polkadot JAM Slides - Token2049 - By Dr. Gavin WoodPolkadot JAM Slides - Token2049 - By Dr. Gavin Wood
Polkadot JAM Slides - Token2049 - By Dr. Gavin Wood
 
Architecting Cloud Native Applications
Architecting Cloud Native ApplicationsArchitecting Cloud Native Applications
Architecting Cloud Native Applications
 
Apidays Singapore 2024 - Modernizing Securities Finance by Madhu Subbu
Apidays Singapore 2024 - Modernizing Securities Finance by Madhu SubbuApidays Singapore 2024 - Modernizing Securities Finance by Madhu Subbu
Apidays Singapore 2024 - Modernizing Securities Finance by Madhu Subbu
 
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWEREMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
EMPOWERMENT TECHNOLOGY GRADE 11 QUARTER 2 REVIEWER
 
Ransomware_Q4_2023. The report. [EN].pdf
Ransomware_Q4_2023. The report. [EN].pdfRansomware_Q4_2023. The report. [EN].pdf
Ransomware_Q4_2023. The report. [EN].pdf
 
FWD Group - Insurer Innovation Award 2024
FWD Group - Insurer Innovation Award 2024FWD Group - Insurer Innovation Award 2024
FWD Group - Insurer Innovation Award 2024
 
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers:  A Deep Dive into Serverless Spatial Data and FMECloud Frontiers:  A Deep Dive into Serverless Spatial Data and FME
Cloud Frontiers: A Deep Dive into Serverless Spatial Data and FME
 
A Year of the Servo Reboot: Where Are We Now?
A Year of the Servo Reboot: Where Are We Now?A Year of the Servo Reboot: Where Are We Now?
A Year of the Servo Reboot: Where Are We Now?
 
GenAI Risks & Security Meetup 01052024.pdf
GenAI Risks & Security Meetup 01052024.pdfGenAI Risks & Security Meetup 01052024.pdf
GenAI Risks & Security Meetup 01052024.pdf
 
2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...2024: Domino Containers - The Next Step. News from the Domino Container commu...
2024: Domino Containers - The Next Step. News from the Domino Container commu...
 
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot TakeoffStrategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
Strategize a Smooth Tenant-to-tenant Migration and Copilot Takeoff
 
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
Connector Corner: Accelerate revenue generation using UiPath API-centric busi...
 
Real Time Object Detection Using Open CV
Real Time Object Detection Using Open CVReal Time Object Detection Using Open CV
Real Time Object Detection Using Open CV
 

Doulbe Occupancy as a Probe of the Mott Transition for Fermions in One-dimensional Optical Lattices

  • 1. Double occupancy as a probe of the Mott state for fermions in one-dimensional optical lattices VIVALDO L. CAMPO, JR (1), KLAUS CAPELLE (2), CHRIS HOOLEY (3), JORGE QUINTANILLA (4,5), and VITO W. SCAROLA (6) (1) UFSCar, Brazil, (2) UFABC, Brazil, (3) SUPA and University of St Andrews, UK, (4) SEPnet and Hubbard Theory Consortium, University of Kent, (5) ISIS Facility, Rutherford Appleton Laboratory, and (6) Virginia Tech, USA arxiv.org:1107.4349 UK Cold Atom/Condensed Matter Network Meetings, Nottingham, 7 September 2011
  • 2. Context: Experiments on 3D Hubbard model Experimental evidence for the Mott transition: U. Schneider, L. Hackermuller, S. Will, Th. Best, I. Bloch, T. A. Costi, R. W. Helmes, D. Rasch, A. Rosch, Science322, 1520-1525 (2008). Robert Jordens, NielsStrohmaier, Kenneth Gunter, Henning Moritz & TilmanEsslinger, Nature 455, 204-208 (2008).
  • 3. Problem:What will happen in 1D? Hamiltonian: Evaluate double occupancy:
  • 4. Effect of the trap – no fluctuations
  • 5. Effect of the trap – no fluctuations D Mott insulator Band +Mott Band insulator D
  • 6. Ground state – no trap U / t f Mott insulator: 0 1 2 Luttinger Liquid Elliott H. Lieb and F. Y. Wu, Phys. Rev. Lett. 20, 1445 (1968); 21, 192 (1968).
  • 7. Ground state – no trap U / t f Mott insulator: 0 1 2 Luttinger Liquid Elliott H. Lieb and F. Y. Wu, Phys. Rev. Lett. 20, 1445 (1968); 21, 192 (1968).
  • 8. Ground state - harmonic trap
  • 9. Ground state - harmonic trap Evaluate D in the local density approximation:
  • 10. Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2)
  • 11. Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2)
  • 12. Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
  • 13. Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
  • 14. Ground state - harmonic trap Evaluate D in the local density approximation: D()= = j Dno trap(+½x2) U/t = 0 U/t = 4,5,6,7
  • 15. Finite temperature – no trap Use high-temperature expansion: (must go at least to 2nd order) Double occupancy: = + + ...
  • 16. Finite temperature – no trap Match to low-T expansion from quantum transfer method [Klümper and Bariev 1996] Obtain C(x) is the unity central charge from CFT for the Hesienberg universality class:
  • 18. Finite temperature – no trap Very good match between high-T and low-T expansions.
  • 19. Finite temperature – no trap Very good match between high-T and low-T expansions. d vs T is non-monotonic (suggests cooling mechanism with 1D system as reference state)
  • 20. Finite temperature – no trap Very good match between high-T and low-T expansions. d vs T is non-monotonic (suggests cooling mechanism with 1D system as reference state) A local picture accounts well for the observed behaviour:
  • 21. Quantum fluctuations + thermal fluctuations + trap
  • 22. In summary... Fermionic Hubbard model in one dimension. Mott phase has inherent double occupancy fluctuations. Mott phase detectable via double occupancy. Can read out double occupancy in the bulk from the trapped data. Non-monotonic temperature dependence a universal, local feature. THANKS! arxiv.org:1107.4349

Editor's Notes

  1. In the presence of the trap, we can still solve problem analytically if we ignore the hopping term. In this limit the system is always an insulator.We have three regimes: -for weak interactions, the system forms a band insulator with two atoms per site-For strong interaction, we have a Mott insulator with one atom per site-in the intermediate regime we have coexistence of band insulator and mott insulator regions
  2. Without the trap, exact results are available [Lieb & Wu 1968]The groundstate phase diagram features Luttinger liquid and Mott insulator phases.Can compute D exactly.Interestingly, find large D even deep in the Mott insulating region: for U as large as the bandwidth one in five atoms are in a doubly-occupied site. This is due to strong quantum fluctuations inherent to the Mott insulating state in 1D.
  3. Without the trap, exact results are available [Lieb & Wu 1968]The groundstate phase diagram features Luttinger liquid and Mott insulator phases.Can compute D exactly.Interestingly, find large D even deep in the Mott insulating region: for U as large as the bandwidth one in five atoms are in a doubly-occupied site. This is due to strong quantum fluctuations inherent to the Mott insulating state in 1D.