REVIEW 3 major objections 5 minor 1 cited by
Pseudo-Majorana functional renormalization for frustrated XXZ spin-1/2 models with field or magnetization along the spin-Z direction at finite temperature
T0 review · 3 major / 5 minor · reviewed 2026-08-12 · deepseek-v4-flash
Pith's one-line read A U(1)-symmetry-adapted pseudo-Majorana functional renormalization group is derived for spin-1/2 XXZ models with a field along the Z axis, and it reproduces magnetization and transition-temperature data for two frustrated…
desk verdict A genuine and useful extension of pm-fRG to U(1)-symmetric field problems, but the headline Na2BaCo transition temperature rests on an uncontrolled truncation in exactly the regime where the method's own benchmark shows trouble. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The drone-fermion (mixed) representation, which pairs one complex fermion $c_j$ with one Majorana fermion $\eta_j$ per site, carries the argument: it maps the XXZ–Z Hamiltonian into a form where the Zeeman term is diagonal while the U(1) spin-rotation symmetry becomes conservation of $c$-particle number. This restricts the four-point vertices to five independent bi-local types and yields a closed set of one-loop flow equations with a Katanin-modified single-scale propagator, solved with a Lorentzian cutoff on Matsubara frequencies and a finite frequency box.
What would settle it
Run the Na2BaCo(PO4)2 calculation with a doubled Matsubara frequency box ($n_{\mathrm{max}} = 20$) and correlation radius $L = 12$; if the peak of the sublattice susceptibility $\tilde{\chi}^{zz}$ shifts by more than a few percent or fails to keep sharpening with $L$, the claimed agreement with the experimental $T_c$ is not numerically converged. A second check would compare against XTRG on a cylinder of width 8 or 10 at the same field.
Extended reading notes
Core claim
The central claim is that a U(1)-symmetry-adapted pm-fRG, based on the drone-fermion representation $S^+_j = -i\sqrt{2}\, c_j \eta_j$, $S^-_j = -i\sqrt{2}\, c^\dagger_j \eta_j$, $S^z_j = \tfrac12 - c^\dagger_j c_j$, correctly describes finite-temperature XXZ models with a Z-field, including the spontaneously magnetized side of a transition. Because the field term $h_j S^z_j$ becomes a simple on-site potential for the complex fermion, the non-interacting Green's function is diagonal in flavor without the mixing that previously blocked pm-fRG in a field. The resulting flow equations, truncated at one loop with a Katanin substitution and a Lorentzian frequency cutoff, compute magnetization from the complex-fermion self-energy and static susceptibilities from four-point vertices. Applied to CeMgAl11O19, the method reproduces measured magnetization curves at 2 K and 5 K, supporting the parameter set put forward from inelastic neutron scattering. Applied to Na2BaCo(PO4)2, the susceptibility peak associated with the up-up-down order parameter gives a critical temperature consistent with experiment and XTRG, and the result sharpens with correlation distance $L$ up to 10 on an infinite lattice.
Load-bearing premise
The flow equations, truncated to one loop with the Katanin substitution and a finite Matsubara frequency box, remain quantitatively accurate at the low temperatures of the two material applications, although the same truncation already deviates strongly from the exact dimer solution below roughly $T \approx J/3$.
Editorial extensions
If this is right
- Finite-temperature fRG can now be applied to frustrated XXZ magnets in a magnetic field along Z, including regions on both sides of a spontaneous U(1)-preserving ordering transition.
- The magnetization data of CeMgAl11O19 are reproduced from the neutron-scattering parameter set, strengthening the case that this material sits close to the exactly solvable $J_\perp/J_z = -0.5$ spin-liquid point.
- For Na2BaCo(PO4)2, the up-up-down spin solid transition temperature at $h = 2.465\,\mathrm{K}$ is obtained by a system-size converged ($L \le 10$) calculation, where the XTRG reference is limited to cylinder width 6.
- The same machinery, with essentially no modification, extends to three-dimensional frustrated XXZ magnets and to other U(1)-symmetric spin models such as retarded spin-spin interactions.
Reading between the lines
- Because the Zeeman term is diagonal for arbitrary site-dependent $h_j$, the method should handle inhomogeneous fields or local impurity fields at no extra structural cost, a natural test being a single flipped site or a staggered seed field in the ordered phase.
- The Na2BaCo(PO4)2 agreement occurs at temperatures where the dimer benchmark already shows strong truncation error, suggesting that higher-dimensional frustration improves the mean-field-like cancellation; comparing against XTRG on cylinders of width larger than 6 would test this directly.
- The unphysical low-temperature dip seen in the FM square-lattice benchmark at small $h$ indicates that spontaneous symmetry breaking with an infinitesimal seed field remains delicate; a temperature-flow version of U(1)-pm-fRG could mitigate this.
- The same diagrammatic structure should carry over to $S = 3/2$ via faithful pseudo-Majorana representations, potentially opening finite-temperature field-dependent studies of higher-spin frustrated magnets.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper extends the pseudo-Majorana functional renormalization group (pm-fRG) to spin-1/2 XXZ models with a magnetic field or magnetization along the spin-Z axis at finite temperature. The authors use a mixed Majorana-complex fermion ('drone-fermion') representation to diagonalize the non-interacting part, derive the U(1)-symmetry-adapted flow equations for self-energies and four-point vertices with the Katanin truncation, and express observables such as magnetization and static spin susceptibilities in terms of the resulting Green's functions and vertices. The method is benchmarked against exact dimer solutions and QMC results for the square-lattice ferromagnetic and cubic-lattice XXZ models. It is then applied to two triangular-lattice materials: CeMgAl11O19, where magnetization curves at T = 2 K and 5 K are reproduced with parameters from neutron-scattering work, and Na2BaCo(PO4)2, where a susceptibility peak is used to identify the critical temperature of the three-sublattice up-up-down transition.
Significance. The principal contribution is a systematic derivation of the U(1)-pm-fRG flow equations and their numerical implementation, together with reproducible code and a set of nontrivial benchmarks. If the application claims hold, the method provides a sign-problem-free tool for frustrated XXZ magnets in a field at finite temperature, which is otherwise difficult to access. The benchmarks against exact dimer results and QMC in unfrustrated systems are meaningful, and the internal consistency check in Eq. (36) and Fig. 5 is a useful addition. However, the decisive application to Na2BaCo(PO4)2 is not yet supported by a convergence test in the regime where the method is not otherwise benchmarked, and the finite-seed-field/correlation-radius extrapolation is absent; these gaps make the magnetic-field applications exploratory rather than conclusive.
major comments (3)
- [VII B, Fig. 9] The central claim that U(1)-pm-fRG determines the transition temperature of Na2BaCo(PO4)2 is not supported by a convergence test in the relevant regime. The dimer benchmark in Sec. VI A (Fig. 4) shows that the method deviates strongly from exact results for T ≲ J/3, while the susceptibility peak in Fig. 9 lies near T/J_z ≈ 0.3 for the quoted parameters J_z = 1.48 K, J_perp = 0.8 K, h = 2.465 K. The authors do not provide a benchmark for a frustrated triangular-lattice XXZ model in this low-temperature regime, nor a check of the nmax = 10 frequency box and projection-to-boundary rule (Appendix C) at these parameters. The single-point agreement with XTRG and experiment may therefore be coincidental, and the paper should demonstrate convergence or provide an independent error estimate before claiming that the method determines this transition temperature.
- [VII B, Fig. 9] The transition temperature is extracted from a susceptibility peak computed at finite symmetry-breaking fields Δh = 0.05 K and 0.0375 K and correlation radii L = 6, 8, 10. No extrapolation to Δh → 0 and L → ∞ is reported; the text states that smaller Δh causes numerical instabilities. Since the peak position is the sole basis for the transition-temperature estimate, its sensitivity to these numerical parameters must be quantified before the agreement with XTRG/experiment can be taken as a quantitative validation. A plot showing the peak position as a function of Δh and L, or a systematic extrapolation, would be necessary to support the stated accuracy.
- [VI B, Fig. 6] The unphysical low-field dip in the magnetization for the square-lattice ferromagnet at h = 0.2 is attributed to a numerical instability in vertex components. This is an admitted failure of the truncation in a regime of low field and low temperature, and the paper does not provide a diagnostic to distinguish physical from unstable flows in the material applications. Since the CeMgAl11O19 application (Sec. VII A) involves low-field and finite-temperature data, the agreement in Fig. 8 would be strengthened by showing that the flows in that parameter range are free of the instability seen in Fig. 6, or by providing a separate controlled benchmark in the relevant low-field regime.
minor comments (5)
- [Fig. 4 caption] The caption contains a stray symbol '□0.5' before the y-axis label; this appears to be a rendering error and should be corrected.
- [Appendix B 2] The derivation of the initial self-energy condition in Eq. (B7) would benefit from a more explicit statement that the constant J^z sum is the Hartree term and that it cancels the bare chemical-potential-like term from Eq. (16b); currently the cancellation is only sketched.
- [Sec. II A] The notation 'Φj ≡ (cj, c†j, ηj)T' is introduced without a clear statement of the transpose convention for Grassmann vectors; a brief comment on the superfield ordering would reduce the chance of confusion in the subsequent derivation.
- [Sec. VIII] The paper states that 'better accuracy of the fRG can be expected in higher spatial dimensions by full incorporation of the mean-field equations' (citing Ref. 16), but this expectation is not demonstrated for the triangular-lattice frustrated case that is the main application. A supporting reference or a brief numerical check would make this statement more precise.
- [Eqs. (31)-(32)] The susceptibility formulas depend on vertex functions at specific bosonic transfer frequencies, but the paper does not test the effect of the finite frequency box (nmax = 10) and the projection-to-boundary rule on these particular frequency combinations. A sensitivity check for at least one of the computed susceptibilities would be useful.
Circularity Check
No significant circularity: the flow equations are derived from an exact spin representation, benchmarks use independent exact/QMC results, and material parameters are imported from external experiments rather than fitted.
full rationale
The central derivation is self-contained: Section II transforms the XXZ-Z Hamiltonian into an exact mixed drone-fermion/Majorana representation; the action, Green's functions, observables, and one-loop Katanin-truncated flow equations are derived explicitly in Sections III-V and Appendices A-B, with initial conditions obtained from the bare vertices and the Schwinger-Dyson equation (Eqs. B6-B8). No parameter is adjusted to make a prediction come out; the CeMgAl11O19 couplings J_perp=0.6469 K, J_z=-0.2784 K and g_z=3.66, and the Na2BaCo(PO4)2 parameters J_perp=0.8 K, J_z=1.48 K, g_z=4.89, are taken from the independent experimental papers Refs. 29 and 37. The benchmarks in Sec. VI compare against exact dimer solutions, QMC for the square-lattice ferromagnet (Ref. 48), and QMC for the cubic-lattice XXZ model (Refs. 49-50), all external to the present flow equations. The Na2BaCo transition temperature is read off from a susceptibility peak and compared with XTRG/experiment; the finite seed field, finite correlation radius, and frequency-box truncation are acknowledged numerical accuracy limitations rather than circular inputs. Self-citations to previous pm-fRG work motivate the cutoff and truncation choices, but the U(1)-symmetry-adapted representation and its flow equations are derived here, and no load-bearing uniqueness theorem or fitted parameter renamed as a prediction is invoked. The acknowledged uncontrolled truncation errors in the frustrated low-temperature regime are a soundness/accuracy concern, not circularity.
Assumptions & free parameters
free parameters (6)
- Exchange couplings J_perp, J_z for CeMgAl11O19 =
J_perp = 0.6469 K, J_z = -0.2784 K
- Landé factor g_z for CeMgAl11O19 =
3.66
- Exchange couplings J_perp, J_z for Na2BaCo(PO4)2 =
J_perp = 0.8 K, J_z = 1.48 K
- Symmetry-breaking seed fields (h and Delta h) =
h = 0.01 (benchmark); Delta h = 0.05 K, 0.0375 K
- Matsubara frequency truncation n_max =
10 for bosonic vertex frequencies, 30 for fermionic self-energy
- Correlation disc radius L =
6, 8, 10 for the triangular lattice
assumptions (5)
- domain assumption The SO(3) pseudo-Majorana representation is a faithful spin-1/2 representation, and the 2^{N/2} unphysical degeneracy cancels in thermal averages.
- standard math The mixed drone-fermion operators (5) satisfy canonical anticommutation relations and exactly reproduce the spin algebra (6).
- domain assumption Global U(1) spin-rotation symmetry around the Z axis remains unbroken in all computed cases, reducing the vertex basis to five independent four-point functions.
- ad hoc to paper The fRG hierarchy can be truncated at the four-point level with the Katanin replacement, i.e. the six-point vertex contributes negligibly.
- ad hoc to paper Finite Matsubara frequency boxes with boundary projection are sufficient for convergence of the flow.
Cite this review
Pith. "Pith review of Pseudo-Majorana functional renormalization for frustrated XXZ spin-1/2 models with field or magnetization along the spin-Z direction at finite temperature." pith.science (2026). https://pith.science/paper/ZRZ3MPJK
@misc{pith2026241118198,
author = {Pith},
title = {Pith review of: Pseudo-Majorana functional renormalization for frustrated XXZ spin-1/2 models with field or magnetization along the spin-Z direction at finite temperature},
year = {2026},
howpublished = {\url{https://pith.science/paper/ZRZ3MPJK}},
note = {Machine review of arXiv:2411.18198}
}
abstract
The numerical study of high-dimensional frustrated quantum magnets remains a challenging problem. Here we present an extension of the pseudo-Majorana functional renormalization group to spin-1/2 XXZ type Hamiltonians with field or magnetization along spin-Z direction at finite temperature. We consider a $U(1)$ symmetry-adapted fermionic spin representation and derive the diagrammatic framework and its renormalization group flow equations. We discuss benchmark results and application to two anti-ferromagnetic triangular lattice materials recently studied in experiments with applied magnetic fields: First, we numerically reproduce the magnetization data measured for CeMgAl$_{11}$O$_{19}$ confirming model parameters previously estimated from inelastic neutron spectrum in high fields. Second, we showcase the accuracy of our method by studying the thermal phase transition into the spin solid up-up-down phase of Na$_2$BaCo(PO$_4$)$_2$ in good agreement with experiment.
Figures
Figures from the paper (6 more)
Forward citations
Cited by 1 Pith paper
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Phase diagram of the XXZ pyrochlore model from pseudo-Majorana functional renormalization group
The spin-1/2 XXZ pyrochlore model exhibits a wide low-temperature non-magnetic phase between two ferromagnetic domes, including quantum spin ice, with a possible lattice nematic ground state near the antiferromagnetic...
Reference graph
Works this paper leans on
-
[1]
author author L. Balents ,\ title title Spin liquids in frustrated magnets , \ 10.1038/nature08917 journal journal Nat. \ volume 464 ,\ pages 199--208 ( year 2010 ) NoStop
-
[2]
author author C. Broholm , author R. J. \ Cava , author S. A. \ Kivelson , author D. G. \ Nocera , author M. R. \ Norman , \ and\ author T. Senthil ,\ title title Quantum spin liquids , \ 10.1126/science.aay0668 journal journal Sci. \ volume 367 ,\ pages eaay0668 ( year 2020 ) NoStop
-
[3]
author author A. Auerbach ,\ @noop title Interacting Electrons and Quantum Magnetism ,\ edition 1994th \ ed.\ ( publisher Springer ,\ address New York ,\ year 1994 ) NoStop
work page 1994
-
[4]
author author A.W. \ Sandvik , author A. Avella , \ and\ author F. Mancini ,\ title title Computational studies of quantum spin systems , \ in\ 10.1063/1.3518900 booktitle AIP Conf. Proc. \ ( year 2010 ) NoStop
-
[5]
author author U. Schollwöck ,\ title title The density-matrix renormalization group in the age of matrix product states , \ https://doi.org/10.1016/j.aop.2010.09.012 journal journal Ann. Phys. \ volume 326 ,\ pages 96--192 ( year 2011 ) NoStop
-
[6]
author author B.-B. \ Chen , author L. Chen , author Z. Chen , author W. Li , \ and\ author A. Weichselbaum ,\ title title Exponential thermal tensor network approach for quantum lattice models , \ 10.1103/PhysRevX.8.031082 journal journal Phys. Rev. X \ volume 8 ,\ pages 031082 ( year 2018 ) NoStop
-
[7]
author author Z. Wang , author P. McClarty , author D. Dankova , author A. Honecker , \ and\ author A. Wietek ,\ @noop title Spectroscopy and complex-time correlations using minimally entangled typical thermal states , \ ( year 2024 ),\ http://arxiv.org/abs/2405.18484 arXiv:2405.18484 NoStop
-
[8]
author author A.A. \ Abrikosov , author L.P. \ Gorkov , \ and\ author I.E. \ Dzyaloshinski ,\ @noop title Methods of Quantum Field Theory in Statistical Physics \ ( publisher Courier Corporation ,\ year 2012 ) NoStop
work page 2012
Show all 59 references
-
[9]
\ Izyumov \ and\ author Y.N
author author Y.A. \ Izyumov \ and\ author Y.N. \ Skryabin ,\ @noop title Statistical Mechanics of Magnetically Ordered Systems \ ( publisher Consultants Bureau ,\ address New York, N.Y ,\ year 1988 ) NoStop
1988
-
[10]
Krieg \ and\ author P
author author J. Krieg \ and\ author P. Kopietz ,\ title title Exact renormalization group for quantum spin systems , \ 10.1103/PhysRevB.99.060403 journal journal Phys. Rev. B \ volume 99 ,\ pages 060403 ( year 2019 ) NoStop
2019 doi
-
[11]
R\"uckriegel , author D
author author A. R\"uckriegel , author D. Tarasevych , \ and\ author P. Kopietz ,\ title title Phase diagram of the J _ 1 - J _ 2 quantum heisenberg model for arbitrary spin , \ 10.1103/PhysRevB.109.184410 journal journal Phys. Rev. B \ volume 109 ,\ pages 184410 ( year 2024 ) NoStop
-
[12]
Schneider , author R
author author B. Schneider , author R. Burkard , author B. Olmos , author I. Lesanovsky , \ and\ author B. Sbierski ,\ title title Dipolar ordering transitions in many-body quantum optics: Analytical diagrammatic approach to equilibrium quantum spins , \ 10.1103/PhysRevA.110.0...
-
[13]
Reuther \ and\ author P
author author J. Reuther \ and\ author P. W\"olfle ,\ title title J _ 1 - J _ 2 frustrated two-dimensional heisenberg model: Random phase approximation and functional renormalization group , \ 10.1103/PhysRevB.81.144410 journal journal Phys. Rev. B \ volume 81 ,\ pages 144410 ...
-
[14]
Kopietz , author L
author author P. Kopietz , author L. Bartosch , \ and\ author F. Sch \"u tz ,\ 10.1007/978-3-642-05094-7 title Introduction to the Functional Renormalization Group \ ( publisher Springer ,\ year 2010 ) NoStop
2010 doi
-
[15]
Metzner , author M
author author W. Metzner , author M. Salmhofer , author C. Honerkamp , author V. Meden , \ and\ author K. Sch \"o nhammer ,\ title title Functional renormalization group approach to correlated fermion systems , \ 10.1103/RevModPhys.84.299 journal journal Rev. Mod. Phys. \ volu...
-
[16]
M \"u ller , author D
author author T. M \"u ller , author D. Kiese , author N. Niggemann , author B. Sbierski , author J. Reuther , author S. Trebst , author R. Thomale , \ and\ author Y. Iqbal ,\ title title Pseudo-fermion functional renormalization group for spin models , \ 10.1088/1361-6633/ad2...
-
[17]
Schneider , author D
author author B. Schneider , author D. Kiese , \ and\ author B. Sbierski ,\ title title Taming pseudofermion functional renormalization for quantum spins: Finite temperatures and the popov-fedotov trick , \ 10.1103/PhysRevB.106.235113 journal journal Phys. Rev. B \ volume 106 ...
-
[18]
Niggemann , author B
author author N. Niggemann , author B. Sbierski , \ and\ author J. Reuther ,\ title title Frustrated quantum spins at finite temperature: Pseudo-majorana functional renormalization group approach , \ 10.1103/PhysRevB.103.104431 journal journal Phys. Rev. B \ volume 103 ,\ page...
-
[19]
Niggemann , author J
author author N. Niggemann , author J. Reuther , \ and\ author B. Sbierski ,\ title title Quantitative functional renormalization for three-dimensional quantum heisenberg models , \ 10.21468/SciPostPhys.12.5.156 journal journal SciPost Phys. \ volume 12 ,\ pages 156 ( year 202...
-
[20]
Niggemann , author N
author author N. Niggemann , author N. Astrakhantsev , author A. Ralko , author F. Ferrari , author A. Maity , author T. M \"u ller , author J. Richter , author R. Thomale , author T. Neupert , author J. Reuther , author Y. Iqbal , \ and\ author H.O. \ Jeschke ,\ title title Q...
-
[21]
\ Gonzalez , author Y
author author M.G. \ Gonzalez , author Y. Iqbal , author J. Reuther , \ and\ author H.O. \ Jeschke ,\ @noop title Field-induced spin liquid in the decorated square-kagome antiferromagnet nabokoite KC u _7 T e O _4 ( SO _4 ) _5 C l , \ ( year 2024 ),\ http://arxiv.org/abs/2410....
2024 arXiv
-
[22]
Schneider , author J
author author B. Schneider , author J. Reuther , author M.G. \ Gonzalez , author B. Sbierski , \ and\ author N. Niggemann ,\ title title Temperature flow in pseudo-majorana functional renormalization for quantum spins , \ 10.1103/PhysRevB.109.195109 journal journal Phys. Rev. ...
-
[23]
Schaden , author M.G
author author Y. Schaden , author M.G. \ Gonzalez , \ and\ author J. Reuther ,\ @noop title Phase diagram of the XXZ pyrochlore model from pseudo-majorana functional renormalization group , \ ( year 2024 ),\ http://arxiv.org/abs/2412.14773 arXiv:2412.14773 NoStop
2024 arXiv
-
[24]
Sbierski , author M
author author B. Sbierski , author M. Bintz , author S. Chatterjee , author M. Schuler , author N.Y. \ Yao , \ and\ author L. Pollet ,\ title title Magnetism in the two-dimensional dipolar XY model , \ 10.1103/PhysRevB.109.144411 journal journal Phys. Rev. B \ volume 109 ,\ pa...
-
[25]
Noculak \ and\ author J
author author V. Noculak \ and\ author J. Reuther ,\ title title Pseudo-fermion functional renormalization group with magnetic fields , \ 10.1103/PhysRevB.109.174414 journal journal Phys. Rev. B \ volume 109 ,\ pages 174414 ( year 2024 ) NoStop
-
[26]
\ Cottam \ and\ author R.B
author author M.G. \ Cottam \ and\ author R.B. \ Stinchcombe ,\ title title Thermodynamic properties of a heisenberg antiferromagnet , \ 10.1088/0022-3719/3/11/011 journal journal J. Phys. C: Solid State Phys. \ volume 3 ,\ pages 2283 ( year 1970 ) NoStop
-
[27]
author author D.C. \ Mattis ,\ https://books.google.at/books?id=h9pEAAAAIAAJ title The Theory of Magnetism: An Introduction to the Study of Cooperative Phenomena ,\ Harper international student reprint\ ( publisher Harper & Row ,\ year 1965 ) NoStop
1965
-
[28]
\ Spencer ,\ title title Quantum-field-theory approach to the heisenberg ferromagnet , \ https://doi.org/10.1103/PhysRev.167.434 journal journal Phys
author author H.J. \ Spencer ,\ title title Quantum-field-theory approach to the heisenberg ferromagnet , \ https://doi.org/10.1103/PhysRev.167.434 journal journal Phys. Rev. \ volume 167 ,\ pages 434 ( year 1968 ) NoStop
1968 doi
-
[29]
Gao , author T
author author B. Gao , author T. Chen , author C. Liu , author M.L. \ Klemm , author S. Zhang , author Z. Ma , author X. Xu , author C. Won , author G.T. \ McCandless , author N. Murai , author S. Ohira-Kawamura , author S.J. \ Moxim , author J.T. \ Ryan , author X. Huang , au...
2024
-
[30]
Zhong , author S
author author R. Zhong , author S. Guo , author G. Xu , author Z. Xu , \ and\ author R.J. \ Cava ,\ title title Strong quantum fluctuations in a quantum spin liquid candidate with a C o-based triangular lattice , \ 10.1073/pnas.1906483116 journal journal Proc. Natl. Acad. Sci....
-
[31]
Li , author Q
author author N. Li , author Q. Huang , author X.Y. \ Yue , author W. J. \ Chu , author Q. Chen , author E. S. \ Choi , author X. Zhao , author H. D. \ Zhou , \ and\ author X.F. \ Sun ,\ title title Possible itinerant excitations and quantum spin state transitions in the effec...
-
[32]
Gao , author C
author author Y. Gao , author C. Zhang , author J. Xiang , author D. Yu , author X. Lu , author P. Sun , author W. Jin , author G. Su , \ and\ author W. Li ,\ title title Double magnon-roton excitations in the triangular-lattice spin supersolid , \ 10.1103/PhysRevB.110.214408 ...
-
[33]
Gao , author Y.-C
author author Y. Gao , author Y.-C. \ Fan , author H. Li , author F. Yang , author X.-T. \ Zeng , author X.-L. \ Sheng , author R. Zhong , author Y. Qi , author Y. Wan , \ and\ author W. Li ,\ title title Spin supersolidity in nearly ideal easy-axis triangular quantum antiferr...
-
[34]
Sheng , author L
author author J. Sheng , author L. Wang , author A. Candini , author W. Jiang , author L. Huang , author B. Xi , author J. Zhao , author H. Ge , author N. Zhao , author Y. Fu , author J. Ren , author J. Yang , author P. Miao , author X. Tong , author D. Yu , author S. Wang , a...
-
[35]
author author F. Mila ,\ title title From rvb to supersolidity: the saga of the ising-heisenberg model on the triangular lattice , \ https://doi.org/10.36471/jccm_june_2024_03 journal journal Journal Club for Condensed Matter Physics \ ( year 2024 ) NoStop
-
[36]
Zhu , author V
author author M. Zhu , author V. Romerio , author N. Steiger , author S.D. \ Nabi , author N. Murai , author S. Ohira-Kawamura , author K. Yu. \ Povarov , author Y. Skourski , author R. Sibille , author L. Keller , author Z. Yan , author S. Gvasaliya , \ and\ author A. Zhelude...
-
[37]
Xiang , author C
author author J. Xiang , author C. Zhang , author Y. Gao , author W. Schmidt , author K. Schmalzl , author C.-W. \ Wang , author B. Li , author N. Xi , author X.-Y. \ Liu , author H. Jin , author G. Li , author J. Shen , author Z. Chen , author Y. Qi , author Y. Wan , author W...
-
[38]
Chen , author A
author author T. Chen , author A. Ghasemi , author J. Zhang , author L. Shi , author Z. Tagay , author L. Chen , author E.-S. \ Choi , author M. Jaime , author M. Lee , author Y. Hao , author H. Cao , author B. Winn , author R. Zhong , author X. Xu , author N.P. \ Armitage , a...
2024
-
[39]
\ Tsvelik ,\ title title New fermionic description of quantum spin liquid state , \ 10.1103/PhysRevLett.69.2142 journal journal Phys
author author A.M. \ Tsvelik ,\ title title New fermionic description of quantum spin liquid state , \ 10.1103/PhysRevLett.69.2142 journal journal Phys. Rev. Lett. \ volume 69 ,\ pages 2142--2144 ( year 1992 ) NoStop
1992 doi
-
[40]
\ Martin \ and\ author N
author author J.L. \ Martin \ and\ author N. Kemmer ,\ title title Generalized classical dynamics, and the ‘classical analogue’ of a fermioscillator , \ 10.1098/rspa.1959.0126 journal journal Proc. R. Soc. Lond. A. Math. Phys. Sci. \ volume 251 ,\ pages 536--542 ( year 1959 ) NoStop
1959
-
[41]
\ Girvin \ and\ author K
author author S.M. \ Girvin \ and\ author K. Yang ,\ 10.1017/9781316480649 title Mod. Condens. Matter Phys. \ ( publisher Cambridge University Press ,\ year 2019 ) NoStop
2019 doi
-
[42]
U ber das paulische \
author author P. Jordan \ and\ author E. Wigner ,\ title title \"U ber das paulische \"a quivalenzverbot , \ 10.1007/BF01331938 journal journal Z. Phys. \ volume 47 ,\ pages 631--651 ( year 1928 ) NoStop
1928 doi
-
[43]
Altland \ and\ author B
author author A. Altland \ and\ author B. Simons ,\ @noop title Condensed Matter Field Theory \ ( publisher Cambridge University Press ,\ year 2006 ) NoStop
2006
-
[44]
Nilsson \ and\ author M
author author J. Nilsson \ and\ author M. Bazzanella ,\ title title Majorana fermion description of the kondo lattice: Variational and path integral approach , \ 10.1103/PhysRevB.88.045112 journal journal Phys. Rev. B \ volume 88 ,\ pages 045112 ( year 2013 ) NoStop
-
[45]
Ro\'osz , author A
author author G. Ro\'osz , author A. Kauch , author F. Bippus , author D. Wieser , \ and\ author K. Held ,\ title title Two-site reduced density matrix from one- and two-particle green's functions , \ 10.1103/PhysRevB.110.075115 journal journal Phys. Rev. B \ volume 110 ,\ pag...
-
[46]
Wetterich ,\ title title Exact evolution equation for the effective potential , \ https://doi.org/10.1016/0370-2693(93)90726-X journal journal Phys
author author C. Wetterich ,\ title title Exact evolution equation for the effective potential , \ https://doi.org/10.1016/0370-2693(93)90726-X journal journal Phys. Lett. B \ volume 301 ,\ pages 90--94 ( year 1993 ) NoStop
1993 doi
-
[47]
\ Katanin ,\ title title Fulfillment of ward identities in the functional renormalization group approach , \ 10.1103/PhysRevB.70.115109 journal journal Phys
author author A.A. \ Katanin ,\ title title Fulfillment of ward identities in the functional renormalization group approach , \ 10.1103/PhysRevB.70.115109 journal journal Phys. Rev. B \ volume 70 ,\ pages 115109 ( year 2004 ) NoStop
2004 doi
-
[48]
Henelius , author A.W
author author P. Henelius , author A.W. \ Sandvik , author C. Timm , \ and\ author S.M. \ Girvin ,\ title title Monte carlo study of a two-dimensional quantum ferromagnet , \ 10.1103/physrevb.61.364 journal journal Phys. Rev. B \ volume 61 ,\ pages 364–374 ( year 2000 ) NoStop
-
[49]
Sadoune \ and\ author L
author author N. Sadoune \ and\ author L. Pollet ,\ title title Efficient and scalable path integral Monte Carlo simulations with worm-type updates for Bose-Hubbard and XXZ models , \ 10.21468/SciPostPhysCodeb.9 journal journal SciPost Phys. Codebases \ ,\ pages 9 ( year 2022 ...
-
[50]
Sadoune \ and\ author L
author author N. Sadoune \ and\ author L. Pollet ,\ title title Codebase release 1.0 for Worm Algorithm for Bose-Hubbard and XXZ Models , \ 10.21468/SciPostPhysCodeb.9-r1.0 journal journal SciPost Phys. Codebases \ ,\ pages 9--r1.0 ( year 2022 b ) NoStop
-
[51]
Momoi \ and\ author M
author author T. Momoi \ and\ author M. Suzuki ,\ title title Ground-state properties and phase diagram of the quantum XXZ antiferromagnet on a triangular lattice , \ 10.1143/JPSJ.61.3732 journal journal Journal of the Physical Society of Japan \ volume 61 ,\ pages 3732--3744 ...
-
[52]
Rohshap , author M.K
author author S. Rohshap , author M.K. \ Ritter , author H. Shinaoka , author J. von Delft , author M. Wallerberger , \ and\ author A. Kauch ,\ @noop title Two-particle calculations with quantics tensor trains -- solving the parquet equations , \ ( year 2024 ),\ http://arxiv.o...
2024 arXiv
-
[53]
Larson \ and\ author T
author author J. Larson \ and\ author T. Mavrogordatos ,\ 10.1088/978-0-7503-6452-2 title The Jaynes -- Cummings Model and Its Descendants ( Second Edition ): Modern Research Directions \ ( publisher IOP Publishing ,\ year 2024 ) NoStop
-
[54]
Schaden \ and\ author J
author author Y. Schaden \ and\ author J. Reuther ,\ title title Bilinear majorana representations for spin operators with spin magnitudes s>1/2 , \ 10.1103/PhysRevResearch.5.023067 journal journal Phys. Rev. Res. \ volume 5 ,\ pages 023067 ( year 2023 ) NoStop
-
[55]
Hagymási , author N
author author I. Hagymási , author N. Niggemann , \ and\ author J. Reuther ,\ @noop title Phase diagram of the antiferromagnetic j_1 - j_2 spin- 1 pyrochlore heisenberg model , \ ( year 2024 ),\ http://arxiv.org/abs/2405.12745 arXiv:2405.12745 NoStop
2024 arXiv
-
[56]
Karrasch , author T
author author C. Karrasch , author T. Enss , \ and\ author V. Meden ,\ title title Functional renormalization group approach to transport through correlated quantum dots , \ 10.1103/PhysRevB.73.235337 journal journal Phys. Rev. B \ volume 73 ,\ pages 235337 ( year 2006 ) NoStop
-
[57]
Karrasch , author R
author author C. Karrasch , author R. Hedden , author R. Peters , author T. Pruschke , author K. Schönhammer , \ and\ author V. Meden ,\ title title A finite-frequency functional renormalization group approach to the single impurity anderson model , \ 10.1088/0953-8984/20/34/3...
-
[58]
Greens_function_and_action we could also use h as initial condition for _ ,i at J,T
note Instead of carrying through the magnetic field in all calculations in Sec. Greens_function_and_action we could also use h as initial condition for _ ,i at J,T . Stop
-
[59]
Rackauckas \ and\ author Q
author author C. Rackauckas \ and\ author Q. Nie ,\ title title Differential E quations.jl--a performant and feature-rich ecosystem for solving differential equations in J ulia , \ https://doi.org/10.5334/jors.151 journal journal J. Open Res. Softw. \ volume 5 ( year 2017 ) NoStop
Reviewed August 12, 2026 · model on record in the stance chip above.
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