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1. Phase transitions, Dirac and WSM states in $\mathrm{Mn}_{1-x} \mathrm{Ge}_x \mathrm{Bi}_2 \mathrm{Te}_4$

2. Interfacing Quantum Spin Hall and Quantum Anomalous Hall insulators: Bi bilayer on MnBi$_2$Te$_4$-family materials

3. Factors influencing the energy gap in topological states of antiferromagnetic MnBi$_2$Te$_4$

4. Native point defects and their implications for the Dirac point gap at MnBi$_2$Te$_4$(0001)

5. Sample-dependent Dirac point gap in MnBi$_2$Te$_4$ and its response to the applied surface charge: a combined photoemission and ab initio study

7. Nature of the Dirac gap modulation and surface magnetic interaction in axion antiferromagnetic topological insulator MnBi$_2$Te$_4$

10. Variety of magnetic topological phases in the (MnBi$_2$Te$_4$)(Bi$_2$Te$_3$)$_m$ family

12. Erratum to: Several Articles in JETP Letters

17. Synchrotron radiation induced magnetization in magnetically-doped and pristine topological insulators

19. Spin current and magnetization induced by circularly polarized synchrotron radiation in magnetically-doped topological insulator Bi$_{1.37}$V$_{0.03}$Sb$_{0.6}$Te$_2$Se

22. Spin structure of Graphene/Pt interface for spin current formation and induced magnetization in deposited (Ni-Fe)-nanodots

24. Prediction and observation of an antiferromagnetic topological insulator

31. Native point defects and their implications for the Dirac point gap at MnBi2Te4(0001)

32. Mixed Type of the Magnetic Order in Intrinsic Magnetic Topological Insulators Mn(Bi,Sb)2Te4.

33. Sample-dependent Dirac-point gap inMnBi2Te4and its response to applied surface charge: A combined photoemission andab initiostudy

34. Non-monotonic variation of the Kramers point band gap with increasing magnetic doping in BiTeI

35. Electronic and Spin Structure of Topological Surface States in MnBi4Te7 and MnBi6Te10 and Their Modification by an Applied Electric Field.

36. Impact of Co Atoms on the Electronic Structure of Bi2Te3 and MnBi2Te4 Topological Insulators.

37. Nature of the Dirac gap modulation and surface magnetic interaction in axion antiferromagnetic topological insulator MnBi2Te4A

39. Electronic Structure of Magnetic Topological Insulators Mn(Bi1 –xSbx)2Te4 with Various Concentration of Sb Atoms.

40. Electronic and Spin Structures of Intrinsic Antiferromagnetic Topological Insulators of the MnBi2Te4(Bi2Te3)m Family and Their Magnetic Properties (Brief Review).

41. Probe-dependent Dirac-point gap in the gadolinium-doped thallium-based topological insulator TlBi0.9Gd0.1Se2

42. Nature of the Dirac gap modulation and surface magnetic interaction in axion antiferromagnetic topological insulator $${\hbox {MnBi}}_2 {\hbox {Te}}_4$$

46. Native point defects and their implications for the Dirac point gap at MnBi2Te4(0001).

47. Modulation of the Dirac Point Band Gap in the Antiferromagnetic Topological Insulator MnBi2Te4 due to the Surface Potential Gradient Change.

48. Signatures of in-plane and out-of-plane magnetization generated by synchrotron radiation in magnetically doped and pristine topological insulators

49. Evidence of large spin-orbit coupling effects in quasi-free-standing graphene on Pb/Ir(1 1 1)

50. Dirac cone intensity asymmetry and surface magnetic field in V-doped and pristine topological insulators generated by synchrotron and laser radiation

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