PhD Thesis
M. Holzmann,
La transition de Bose-Einstein dans un gaz dilue
Paris, France (2000) (in French).
pdf
HdR Mémoire
M. Holzmann,
Quantum Monte Carlo Calculations of Ground and Excited State Properties of Extended Many-Fermion Systems and of Quasi-Two-Dimensional Trapped Bose Gases
Paris, France (2012).
Publications
-
- J. Audretsch, R. Müller and M. Holzmann,
Relation between energy shifts and relaxation rates for a small system coupled to a reservoir,
Phys. Lett. A199, 151 (1995); quant-ph/9503012. - J. Audretsch, R. Müller and M. Holzmann,
Generalized Unruh effect and Lamb shift for atoms on arbitrary stationary trajectories,
Class. Quantum Grav. 12, 2927 (1995); quant-ph/9510025. - M. Holzmann and J. Audretsch,
Shaping an ultracold atomic soliton in a travelling wave laser beam,
Europhys. Lett. 40, 31 (1997); cond-mat/9709038. - M. Holzmann, W. Krauth, and M. Naraschewski,
Precision Monte Carlo test of the Hartree-Fock approximation for a trapped Bose gas,
Phys. Rev. A59, 2956 (1999); cond-mat/9806201. - M. Holzmann, P. Grüter, and F. Laloë,
Bose-Einstein condensation in interacting gases,
Eur. Phys. J. B10, 739 (1999); cond-mat/9809356. - M. Holzmann and Y. Castin,
Pair correlation function of an inhomogeneous interacting Bose-Einstein condensate,
Eur. Phys. J. D7, 425 (1999); physics/9812029. - G. Baym, J.-P. Blaizot, M. Holzmann, F. Laloë, and D. Vautherin,
The Transition Temperature of the Dilute Interacting Bose Gas,
Phys. Rev. Lett. 83, 1703 (1999); cond-mat/9905430. - M. Holzmann and W. Krauth,
Transition Temperature of the Homogeneous, Weakly Interacting Bose Gas,
Phys. Rev. Lett. 83, 2687 (1999); cond-mat/9905198. - D. S. Petrov, M. Holzmann, and G. V. Shlyapnikov,
Bose-Einstein condensation in quasi2D trapped gases,
Phys. Rev. Lett. 84, 2551 (2000); cond-mat/9909344. - M. Holzmann and F. Laloë,
Bogoliubov transformation for distinguishable particles,
Moroccan Journal Of Condensed Matter 3, 1 (2000); cond-mat/9911150. - W. J. Mullin, M. Holzmann, and F. Laloë,
Instability in a Two-Dimensional Dilute Interacting Bose System,
J. Low Temp. Phys. 121, 269 (2000); cond-mat/0009071. - W. J. Mullin, M. Holzmann, and F. Laloë,
Validity of the Hohenberg Theorem for a Generalized Bose-Einstein Condensation in Two Dimensions,
J. Low Temp. Phys. 121, 263 (2000); cond-mat/0009070. - G. Baym, J.-P. Blaizot, M. Holzmann, F. Laloë, and D. Vautherin,
Bose-Einstein transition in an interacting dilute Bose gas,
Eur. Phys. J. B24, 107 (2001); cond-mat/0107129. - E. J. Mueller, G. Baym, and M. Holzmann,
Finite size scaling and the role of the thermodynamic ensemble in the transition temperature of a dilute Bose gas,
J. Phys. B34, 4561 (2001); cond-mat/0105359. - M. Holzmann, G. Baym, J.-P. Blaizot, and F. Laloë,
Non-analytic dependence of the transition temperature of the homogeneous dilute Bose gas on scattering length,
Phys. Rev. Lett. 87, 120403 (2001); cond-mat/0103595. - J. N. Fuchs, M. Holzmann, and F. Laloë,
Ursell operators in statistical physics of dense systems: the role of high order operators and of exchange cycles,
Eur. Phys. J. B25, 463 (2002); cond-mat/0109265. - M. Holzmann and G. Baym,
Condensate density and superfluid mass density of a dilute Bose gas near the condensation transition,
Phys. Rev. Lett. 90, 040402 (2003); cond-mat/0209647. - M. Holzmann, D.M. Ceperley, C. Pierleoni, and K. Esler,
Backflow Correlations for the Electron Gas and Metallic Hydrogen,
Phys. Rev. E68, 046707 (2003); cond-mat/0304165. - M. Holzmann, J.-N. Fuchs, G. Baym, J.-P. Blaizot, F. Laloë,
Bose-Einstein transition temperature in a dilute repulsive gas,
Comptes Rendus Physique 5, 21 (2004); cond-mat/0310460. - C. Pierleoni, D.M. Ceperley, and M. Holzmann,
Coupled Electron-Ion Monte Carlo Calculations of Dense Metallic Hydrogen,
Phys. Rev. Lett. 93, 146402 (2004); physics/0405056. - M. Holzmann and B. Bernu,
Optimized periodic 1/r Coulomb potential in two dimensions,
J. Comput. Phys. 206, 111 (2005); cond-mat/0407244. - M. Holzmann, C. Pierleoni, and D.M. Ceperley,
Coupled Electron-Ion Monte Carlo Calculations of Atomic Hydrogen,
Proceedings of the Europhysics Conference on Computational Physics 2004,
Comp. Phys. Comm. 169, 421 (2005); cond-mat/0410530. - M. Holzmann, G. Baym, J.-P. Blaizot, and F. Laloë,
The Kosterlitz-Thouless-Berezinskii transition of homogeneous and trapped Bose gases in two dimensions,
Proc. Natl. Acad. Sci. USA, 10.1073/pnas.0609957104 (2007); cond-mat/0508131. - S. Chiesa, D.M. Ceperley, R.M. Martin, and M. Holzmann,
Finite Size Error in Many-body Simulations with Long-Range Interactions,
Phys. Rev. Lett. 97, 076404 (2006); cond-mat/0605004. - M. Holzmann, B. Bernu, and D.M. Ceperley,
Many-body wavefunctions for normal liquid He3,
Phys. Rev. B 74, 104510 (2006); cond-mat/0605513. - S. Chiesa, D. M. Ceperley, R. M. Martin, and M. Holzmann,
Random phase approximation and the finite size errors in many body simulations,
AIP Conference Proceedings Volume 918
LECTURES ON THE PHYSICS OF STRONGLY CORRELATED SYSTEMS XI:
Eleventh Training Course in the Physics of Strongly Correlated Systems, p. 284-288 (2007). - M. Holzmann and G. Baym,
Condensate superfluidity and infrared structure: the Josephson relation,
Phys. Rev. B 76, 092502 (2007); cond-mat/0703755. - C. Pierleoni, K. T. Delaney, M. A. Morales, D. M. Ceperley, and M. Holzmann,
Progress in Coupled Electron-Ion Monte Carlo Simulations of High-Pressure Hydrogen,
In: Advances in Quantum Many-Body Theories,
Conference proceedings: Recent Progress in Many-Body-Theory,
eds. Astrakharchik G. E., Boronat J., Mazzanti F., p. 217, (World Scientific, 2008). - M. Holzmann and W. Krauth,
Kosterlitz-Thouless transition of the quasi two-dimensional trapped Bose gas,
Phys. Rev. Lett. 100,190402 (2008); cond-mat/0710.5060. - C. Pierleoni, K. T. Delaney, M. A. Morales, D.M. Ceperley, and M. Holzmann,
Trial wave functions for High-Pressure Metallic Hydrogen,
Comp. Phys. Comm. 179, 89 (2008); physics/0712.0161. - M. Holzmann, M. Chevallier, and W. Krauth,
Semiclassical theory of the quasi two-dimensional trapped Bose gas,
Europhys. Lett. 82, 30001 (2008); cond-mat/0801.2758. - B. Bernu, F. Delyon, M. Duneau, and M. Holzmann,
Metal-insulator transition in the Hartree-Fock phase diagram of the fully polarized homogeneous electron gas in two dimensions,
cond-mat/0804.1025 (2008). - F. Delyon, M. Duneau, B. Bernu, and M. Holzmann,
Existence of a metallic phase and upper bounds of the Hartree-Fock energy in the homogeneous electron gas,
cond-mat/0807.0770 (2008). - M. Holzmann, B. Bernu, V. Olevano, R.M. Martin, and D.M. Ceperley,
Renormalization factor and effective mass of the two-dimensional electron gas,
Phys. Rev. B 79, 041308(R) (2009); cond-mat/0810.2450. - B. Bernu, F. Delyon, M. Duneau, and M. Holzmann,
Metal-insulator transition in the Hartree-Fock phase diagram of the fully polarized homogeneous electron gas in two dimensions,
Phys. Rev. B 78, 245110 (2008); cond-mat/0810.3559. - P.E. Trevisanutto, M. Holzmann, M. Cote, and V. Olevano,
Ab initio high-energy excitonic effects in graphite and graphene,
Phys. Rev. B 81, 121405(R) (2010); cond-mat/0909.1682. - M. Holzmann, M. Chevallier, and W. Krauth,
Universal correlations and coherence in quasi-two-dimensional trapped Bose gases,
Phys. Rev. A 81, 043622 (2010) ; cond-mat/0911.1704. - S.P. Rath, T. Yefsah, K.J. Günter, M. Cheneau, R. Desbuquois, M. Holzmann, W. Krauth, and J. Dalibard,
The equilibrium state of a trapped two-dimensional Bose gas,
Phys. Rev. A 82, 013609 (2010); cond-mat/1003.4545. - S. Huotari, J. A. Soininen, T. Pylkkänen, A. Titov, A. Issolah, K. Hämäläinen, J. McMinis, J. Kim, K. Esler, D.M. Ceperley, M. Holzmann, and V. Olevano,
Momentum distribution and renormalization factor in sodium and the electron gas,
Phys. Rev. Lett. 105, 086403 (2010); cond-mat/1006.5591. - B. Bernu, F. Delyon, and M. Holzmann,
Quasi-two-dimensional electron gas at metallic densities,
Phys. Rev. B 82, 245116 (2010); cond-mat/1009.3789. - M. Cazzaniga, H. Cercellier, M. Holzmann, C. Monney, P. Aebi, G. Onida, and V. Olevano,
Ab initio many-body effects in TiSe2: A possible excitonic insulator scenario from GW band-shape renormalization,
Phys. Rev. B 85, 195111 (2012); cond-mat/1103.2104. - M. Holzmann, B. Bernu, C. Pierleoni, J. McMinis, D. M. Ceperley, V. Olevano, and L. Delle Site,
The momentum distribution of the homogeneous electron gas,
Phys. Rev. Lett. 107, 110402 (2011); cond-mat/1105.2338. - M. Holzmann, B. Bernu, and D. M. Ceperley,
Finite-size analysis of the Fermi liquid properties of the homogeneous electron gas,
J. Phys.: Conf. Ser. 321 012020 (2011), cond-mat/1105.2964. - B. Bernu, F. Delyon, M. Holzmann, and L. Baguet,
The Hartree-Fock phase diagram of the two-dimensional electron gas,
Phys. Rev. B 84, 115115 (2011); cond-mat/1106.2939. - R. P. Smith, N. Tammuz, R. L. D. Campbell, M. Holzmann, and Z. Hadzibabic,
Condensed Fraction of an Atomic Bose Gas Induced by Critical Correlations,
Phys. Rev. Lett. 107, 190403 (2011); cond-mat/1106.6295. - T. Plisson, B. Allard, M. Holzmann, G. Salomon, A. Aspect, P. Bouyer, and T. Bourdel,
Coherence properties of a 2D trapped Bose gas around the superfluid transition,
Phys. Rev. A 84, 061606(R) (2011); cond-mat/1110.3201. - B. Allard, T. Plisson, M. Holzmann, G. Salomon, A. Aspect, P. Bouyer, and T. Bourdel,
Effect of disorder close to the superfluid transition in a two-dimensional Bose gas,
Phys. Rev. A 85, 033602 (2012); cond-mat/1112.0985. - V. Olevano, A. Titov, M. Ladisa, K. Hämäläinen, S. Huotari, and M. Holzmann,
Momentum distribution and Compton profile by the ab initio GW approximation,
Phys. Rev. B 86, 195123 (2012); cond-mat/1210.7195. - G. Carleo, G. Boeris, M.Holzmann, and L.Sanchez-Palencia,
Universal Superfluid Transition and Transport Properties of Two-Dimensional Dirty Bosons,
Phys. Rev. Lett. 111, 050406 (2013); cond-mat/1305.3032. - E.W. Brown, J.L. DuBois, M. Holzmann, and D.M. Ceperley,
Exchange-correlation energy for the 3D homogeneous electron gas at arbitrary temperature,
Phys. Rev. B 88, 081102(R) (2013); cond-mat/1306.1863. Erratum. - S. Thiele, R. Vincent, M. Holzmann, S. Klyatskaya, M. Ruben, F. Balestro, and W. Wernsdorfer,
Electrical Readout of Individual Nuclear Spin Trajectories in a Single-Molecule Magnet Spin Transistor,
Phys. Rev. Lett. 111, 037203 (2013); Supplementary Material. - L. Baguet, F. Delyon, B. Bernu, and M. Holzmann,
Hartree-Fock Ground State Phase Diagram of Jellium,
Phys. Rev. Lett. 111, 166402 (2013); cond-mat/1307.3081. Supplementary Material. - N.M. Tubman, E. Liberatore, C. Pierleoni, M. Holzmann, and D. M. Ceperley,
Molecular-Atomic Transition in the Deuterium Hugoniot with Coupled Electron Ion Monte Carlo,
Phys. Rev. Lett. 115, 045301 (2015); cond-mat/1408.6523. - L. Baguet, F. Delyon, B. Bernu, and M. Holzmann,
Properties of Hartree-Fock solutions of the three-dimensional electron gas,
Phys. Rev. B 90, 165131 (2014); cond-mat/1404.7652. - M. Taddei, M. Ruggeri, S. Moroni, and M. Holzmann,
Iterative backflow renormalization procedure for many-body ground state wave functions of strongly interacting normal Fermi liquids,
Phys. Rev. B 91, 115106 (2015); cond-mat/1501.02199. - P.A. Murthy, I. Boettcher, L. Bayha, M. Holzmann, D. Kedar, M. Neidig, M.G. Ries, A.N. Wenz, G. Zuern, and S. Jochim,
Observation of the Berezinskii-Kosterlitz-Thouless phase transitionin an ultracold Fermi gas,
Phys. Rev. Lett. 115, 010401 (2015); cond-mat/1505.02123. Supplementary Material. - F. Delyon, B. Bernu, L. Baguet, and M. Holzmann,
Upper bounds of spin-density wave energies in the homogeneous electron gas,
Phys. Rev. B 92, 235124 (2015); cond-mat/1507.06884. Supplementary Material.
- J. Audretsch, R. Müller and M. Holzmann,
-
- R. C. Clay III, M. Holzmann, D. M. Ceperley, and M. A. Morales,
Benchmarking Hydrogen-Helium Mixtures with QMC: Energetics, Pressures, and Forces,
Phys. Rev. B 93, 035121 (2016); cond-mat/1508.05118. Supplementary Material. - C. Pierleoni, M. A. Morales, G. Rillo, M. Holzmann, and D. M. Ceperley,
Liquid-liquid phase transition in hydrogen by Coupled Electron-Ion Monte Carlo Simulations,
Proc. Natl. Acad. Sci. USA, 10.1073/pnas.1603853113. including Supplementary Material. - F. Calcavecchia and M. Holzmann,
Fermion sign problem in imaginary-time projection continuum quantum Monte Carlo with local interaction,
Phys. Rev. E 93, 043321 (2016); cond-mat/1601.01558. - M. Holzmann, R.C. Clay III, M. A. Morales, N.M. Tubman, D. M. Ceperley, and C. Pierleoni,
Theory of Finite Size Effects for Electronic Quantum Monte Carlo Calculations of Liquids and Solids,
Phys. Rev. B 94, 035126 (2016); cond-mat/1603.03957. - I. Boettcher and M. Holzmann,
Quasi-Long-Range Order in Trapped 2D Bose Gases,
Phys. Rev. A 94, 011602(R) (2016); cond-mat/1605.00597. Supplementary Material. - F. Delyon, B. Bernu, and M. Holzmann,
Confidence and efficiency scaling in Variational Quantum Monte Carlo calculations,
Phys. Rev. E 95, 023307 (2017); cond-mat/1609.02703. - J. Li, M. Holzmann, I. Duchemin, X. Blase, and V. Olevano,
Helium atom excitations by the GW and Bethe-Salpeter many-body formalism,
Phys. Rev. Lett. 118, 163001 (2017); cond-mat/1611.07456. - G. Carleo, L. Cevolani, L. Sanchez-Palencia, and M. Holzmann,
Unitary dynamics of strongly-interacting Bose gases with time-dependent variational Monte Carlo method in continuous space,
Phys. Rev. X 7, 031026 (2017); cond-mat/1612.06392. - E. Kawasaki and M. Holzmann,
Finite Temperature Phases of Two Dimensional Spin-Orbit Coupled Bosons,
Phys. Rev. A 95, 051601(R) (2017); cond-mat/1701.05002. - F.G. Eich, M. Holzmann, and G. Vignale,
Effective mass of quasiparticles from thermodynamics,
Phys. Rev. B 96, 035132 (2017); cond-mat/1704.04076. - F. Calcavecchia, T.D. Kühne, and M. Holzmann,
Two-Dimensional Hydrogen Structure at Ultra-High Pressure,
cond-mat/1705.04793. - B. Bernu, F. Delyon, L. Baguet, and M. Holzmann,
Periodic Ground States of the Electron Gas in Two and Three Dimensions,
Contrib. Plasma Phys. 57, 524 (2017). SCCS 2017 Conference proceedings (2017). - C. Pierleoni, M. Holzmann, and D.M. Ceperley,
Local structure in dense hydrogen at the liquid-liquid phase transition by Coupled Electron-Ion Monte Carlo,
Contrib. Plasma Phys. 58, 99 (2017). SCCS 2017 Conference proceedings (2017); cond-mat/1711.00702. - M. Ruggeri, S. Moroni, and M. Holzmann,
Nonlinear Network description for many-body quantum systems in continuous space,
Phys. Rev. Lett. 120, 205302 (2018); cond-mat/1711.01993. Supplementary Material. - C. Pierleoni, G. Rillo, D.M. Ceperley, and M. Holzmann,
Electron localization properties in high pressure hydrogen at the liquid-liquid phase transition by Coupled Electron-Ion Monte Carlo,
CCP 2017 Conference proceedings (2017),
J. Phys.: Conf. Ser. 1136, 012005 (2018); cond-mat/1712.00392. - S. Dang, R. Anankine, C. Gomez, A. Lemaîre, M. Holzmann, and F. Dubin,
Defect-Driven Superfluid Crossover for Two-Dimensional Dipolar Excitons Trapped at Thermodynamic Equilibrium,
Phys. Rev. Lett. 122, 117402 (2019); cond-mat/1805.07982. Supplementary Material. - M. Holzmann and S. Moroni,
Orbital–dependent backflow wave functions for real–space quantum Monte Carlo,
Phys. Rev. B 99, 085121 (2019); cond-mat/1910.07167. - T. Comparin, R. Bombin, M. Holzmann, F. Mazzanti, J. Boronat, and S. Giorgini,
Two-dimensional Mixture of Dipolar Fermions: Equation of State and Magnetic Phase,
Phys. Rev. A 99, 043609 (2019); cond-mat/1812.08064. - B. Lucini, O. Francesconi, M. Holzmann, and A. Rago,
The density of states approach to the sign problem,
XIIIth Quark Confinement and the Hadron Spectrum 2018 Conference proceedings; hep-lat/1901.07602. - M. Holzmann,
Machine learning many-electron wave functions via backflow transformations,
Journal Club for Condensed Matter Physics 5, 01 (2020). - M. Holzmann and S. Moroni,
Itinerant–electron magnetism: the importance of many-body correlations,
Phys. Rev. Lett. 124, 206404 (2020); cond-mat/1910.06554. Supplementary Material. - Y. Yang, V. Gorelov, C. Pierleoni, D. M. Ceperley, and M. Holzmann,
Electronic band gaps from Quantum Monte Carlo methods,
Phys. Rev. B 101, 085115 (2020); cond-mat/1910.07531. Supplementary Material. - O. Francesconi, M. Holzmann, B. Lucini and A. Rago,
Free energy of the self-interacting relativistic lattice Bose gas at finite density,
Phys. Rev. D 101, 014504 (2020); hep-lat/1910.11026. - D. M. Basko, F. Pfeiffer, P. Adamus, M. Holzmann, and F. W. J. Hekking,
Superconductor-insulator transition in Josephson junction chains by quantum Monte-Carlo,
Phys. Rev. B 101, 024518 (2020); cond-mat/1911.02817. - V. Gorelov, M. Holzmann, D. M. Ceperley, and C. Pierleoni,
Energy gap closure of crystalline molecular hydrogen with pressure,
Phys. Rev. Lett. 124, 116401 (2020); cond-mat/1911.06135. Supplementary Material. - O. Francesconi, M. Holzmann, B. Lucini, A. Rago, and J. Rantaharju,
Computing general observables in lattice models with complex actions,
hep-lat/1912.04190. - Y. Yang, N. Hiraoka, K. Matsuda, M. Holzmann, and D.M. Ceperley,
Quantum Monte Carlo Compton profiles of solid and liquid lithium,
Phys. Rev. B 101, 165125 (2020); cond-mat/1912.12295. Supplementary Material. - N. Hiraoka, Y. Yang, T. Hagiya, A. Niozu, K. Matsuda, S. Huotari, M. Holzmann, and D. M. Ceperley,
Direct observation of the momentum distribution and renormalization factor in lithium,
Phys. Rev. B 101, 165124 (2020). - S. Dang, M. Zamorano, S. Suffit, K. West, K. Baldwin, L. Pfeiffer, M. Holzmann, and F. Dubin,
Observation of Algebraic Time Order for Two-Dimensional Dipolar Excitons,
Phys. Rev. Research 2, 032013(R) (2020); cond-mat/2001.01309. Supplementary Material. - O. Francesconi, M. Holzmann, B. Lucini and A. Rago,
Density of state method for complex action systems,
Proceedings, 11th International Winter Workshop « Excited QCD » 2019 : Schladming, Austria,
Acta Phys. Polon. Supp. 13, 121 (2020). - M. Ruggeri, M. Holzmann, D. M. Ceperley, and C. Pierleoni,
Quantum Monte Carlo determination of the principal Hugoniot of deuterium,
Phys. Rev. B 102, 144108 (2020); cond-mat/2008.00269. - V. Gorelov, D. M. Ceperley, M. Holzmann, and C. Pierleoni,
Electronic energy gap closure and the metal-insulator transition in dense liquid hydrogen,
Phys. Rev. B 102, 195133 (2020); cond-mat/2009.00652. - C. Lagoin, S. Suffit, K. West, K. Baldwin, L. Pfeiffer, M. Holzmann, and F. Dubin,
Quasi-condensation of bilayer excitons in a periodic potential,
Phys. Rev. Lett. 126, 067404 (2021); cond-mat/2009.07566. - T. Maimbourg, D. M. Basko, M. Holzmann, and A. Rosso,
Bath-induced Zeno localization in driven many-body quantum systems,
Phys. Rev. Lett. 126, 120603 (2021); cond-mat/2009.11784. Supplementary Material. - V. Gorelov, D. M. Ceperley, M. Holzmann, and C. Pierleoni,
Electronic structure and optical properties of quantum crystals from first principles calculations in the Born-Oppenheimer approximation,
J. Chem. Phys. 153, 234117 (2020); cond-mat/2010.01988. - E. A. Carlen, M. Holzmann, I. Jauslin, and Elliott H. Lieb
Simplified approach to the repulsive Bose gas from low to high densities and its numerical accuracy,
Phys. Rev. A 103, 053309 (2021);
Erratum Phys. Rev. A 104, 049904(E) (2021); cond-mat/2011.10869. - V. Efremkin, J.-L. Barrat, S. Mossa, and M. Holzmann
Time correlation functions for quantum systems: validating Bayesian approaches for harmonic oscillators and beyond,
J. Chem.Phys. 155, 134108 (2021); cond-mat/2105.09575. - B. Lucini, O. Francesconi, M. Holzmann, D. Lancaster, and Antonio Rago
Efficient computations of continuous action densities of states for lattice models ,
CCP 2021 Conference proceedings (2021),
hep-lat/2111.00353. - C. Lagoin, U. Bhattacharya, T. Grass, R. Chhajlany, T. Salamon, K. Baldwin, L. Pfeiffer, M. Lewenstein, M. Holzmann, and F. Dubin
Extended Bose–Hubbard model with dipolar excitons,
Nature 609, 485 (2022); cond-mat/2201.03311. - M. Wilson, S. Moroni, M. Holzmann, N. Gao, F. Wudarski, T. Vegge, and A. Bhowmik
Neural network ansatz for periodic wave functions and the homogeneous electron gas,
Phys. Rev. B 107, 235139 (2023); cond-mat/2202.04622. - H. Niu, Y. Yang, S. Jensen, M. Holzmann, C. Pierleoni, and D.M. Ceperley,
Stable solid molecular hydrogen above 900K from a machine-learned potential trained with diffusion Quantum Monte Carlo,
Phys. Rev. Lett. 130, 076102 (2023); cond-mat/2209.00658; Supplementary Material. - E. Kawasaki and M. Holzmann
Data Subsampling for Bayesian Neural Networks,
cs/2210.09141. - V. Gorelov, Y. Yang, M. Ruggeri, D. M. Ceperley, C. Pierleoni, and M. Holzmann,
Neutral band gap of Carbon by Quantum Monte Carlo methods,
Condensed Matter Physics 26, 33701 (2023); cond-mat/2303.17944. - M. Holzmann, F. Calcavecchia, D. M. Ceperley, and V. Olevano,
Static self energy and effective mass of the homogeneous electron gas from Quantum Monte Carlo calculations,
Phys. Rev. Lett. 131, 186501 (2023); cond-mat/2305.02274. Supplementary Material. - D.M. Ceperley, S. Jensen, Y. Yang, H. Niu, C. Pierleoni, and M. Holzmann,
Training models using forces computed by stochastic electronic structure methods,
Electron. Struct. 6, 015011 (2024); cond-mat/2310.15994. - V. Gorelov, M. Holzmann, D. M. Ceperley, and C. Pierleoni,
Electronic excitation spectra of molecular hydrogen in Phase I from Quantum Monte Carlo and Many-Body perturbation methods,
Phys. Rev. B 109, L241111 (2024); cond-mat/2311.08506. Supplementary Material. - M. Bonitz, J. Vorberger, M. Bethkenhagen, M. Böhme, D. M. Ceperley, A. Filinov, T. Gawne, F. Graziani, G. Gregori, P. Hamann, S. Hansen, M. Holzmann, S.X. Hu, H. Kählert, V. Karasiev, U. Kleinschmidt, L. Kordts, C. Makait, B. Militzer, Z. Moldabekov, C. Pierleoni, M. Preising, K. Ramakrishna, R. Redmer, S. Schwalbe, P. Svensson, and T. Dornheim,
Toward first principles-based simulations of dense hydrogen,
Phys. Plasmas 31, 110501 (2024); cond-mat/2405.10627. - M. Holzmann,
High-Pressure Phases of Hydrogen,
in Correlations and Phse Transitions Modeling and Simulation, Vol. 14, eds. E. Pavarini and E. Koch (Jülich, 2024). - S. Goswami, S. Jensen, Y. Yang, M. Holzmann, C. Pierleoni, and D.M. Ceperley,
High temperature melting of dense molecular hydrogen from machine-learning interatomic potentials trained on quantum Monte Carlo,
J. Chem. Phys. 162, 054118 (2025); physics/2411.15665. - D. Linteau, G. Pescia, J. Nys, G. Carleo, and M. Holzmann,
Phase diagram and crystal melting of helium-4 in two dimensions,
Phys. Rev. Lett 134, 246001 (2025); cond-mat/2412.05332. Supplementary Material. - M. Istas, S. Jensen, Y. Yang, M. Holzmann, C. Pierleoni, and D.M. Ceperley,
The liquid-liquid phase transition of hydrogen and its critical point: Analysis from ab initio simulation and a machine-learned potential,
Phys. Rev. E 111, 045307 (2025); cond-mat/2412.14953. - D. Linteau, S. Moroni, G. Carleo, and M. Holzmann,
Neural wave functions for high-pressure atomic hydrogen,
Phys. Rev. Research 8, L022007 (2026); cond-mat/2504.07062. - V. Efremkin, J.-L. Barrat, S. Mossa, and M. Holzmann
Computation of thermal conductivity based on Path Integral Monte Carlo methods,
cond-mat/2602.16405. - D. Linteau, S. Moroni, G. Carleo, and M. Holzmann,
Variance reduction for forces and pressure in variational Monte Carlo,
cond-mat/2603.14521.
- R. C. Clay III, M. Holzmann, D. M. Ceperley, and M. A. Morales,





0 commentaires