Owing to the high resolution of magnetic force microscopes (MFMs) operating at low temperatures and high-applied magnetic fields, they can be employed to study various phenomena observed in topological magnetic materials and superconductors. In this study, we constructed a low-temperature MFM equipped with a 2–2–9-T vector magnet and a three-axis fiber-optic alignment system. The three-axis alignment device enables in situ calibration of the scanner at low temperatures as well as optimizes the intensity and sensitivity of the interferometer signal. A massive homebuilt vibration isolation table lowers the resonance frequency of the system and minimizes mechanical noise. Consequently, the minimum detectable force gradient of our proposed model is close to the thermodynamic limit of the cantilever. To demonstrate the low-temperature capability of the MFM, we obtained magnetic domain images of the van der Waals ferromagnet Fe4GeTe2 and the Abrikosov superconducting vortices of an Nb film. Furthermore, we performed field angle-dependent MFM experiments in a van der Waals magnetic insulator Cr2Ge2Te6 to verify its vector-field functionality and observed a transition in the domains from the stripe to the bubble phase with respect to the magnetic field angle. The vector-field capability of our MFM can be useful for investigating various anisotropic magnetic phenomena in topological magnetic and superconducting materials.

1.
G.
Binning
,
C. F.
Quate
, and
C.
Gerber
,
Phys. Rev. Lett.
56
,
930
(
1986
).
2.
A.
Schwarz
,
M.
Liebmann
,
U.
Kaiser
,
R.
Wiesendanger
,
T. W.
Noh
, and
D. W.
Kim
,
Phys. Rev. Lett.
92
,
077206
(
2004
).
3.
J.
Jeong
,
I.
Yang
,
J.
Yang
,
O. E.
Ayala-Valenzuela
,
D.
Wulferding
,
J. S.
Zhou
,
J. B.
Goodenough
,
A.
de Lozanne
,
J. F.
Mitchell
,
N.
Leon
,
R.
Movshovich
,
Y. H.
Jeong
,
H. W.
Yeom
, and
J.
Kim
,
Phys. Rev. B
92
,
054426
(
2015
).
4.
N.
León-Brito
,
E. D.
Bauer
,
F.
Ronning
,
J. D.
Thompson
, and
R.
Movshovich
,
J. Appl. Phys.
120
,
083903
(
2016
).
5.
D.
Wulferding
,
H.
Kim
,
I.
Yang
,
J.
Jeong
,
K.
Barros
,
Y.
Kato
,
I.
Martin
,
O. E.
Ayala-Valenzuela
,
M.
Lee
,
H. C.
Choi
,
F.
Ronning
,
L.
Civale
,
R. E.
Baumbach
,
E. D.
Bauer
,
J. D.
Thompson
,
R.
Movshovich
, and
J.
Kim
,
Sci. Rep.
7
,
46296
(
2017
).
6.
P.
Milde
,
D.
Köhler
,
J.
Seidel
,
L. M.
Eng
,
A.
Bauer
,
A.
Chacon
,
J.
Kindervater
,
S.
Mühlbauer
,
C.
Pfleiderer
,
S.
Buhrandt
,
C.
Schütte
, and
A.
Rosch
,
Science
340
,
1076
1080
(
2013
).
7.
A.
Soumyanarayanan
,
M.
Raju
,
A. L.
Gonzalez Oyarce
,
A. K. C.
Tan
,
M.-Y.
Im
,
A. P.
Petrović
,
P.
Ho
,
K. H.
Khoo
,
M.
Tran
,
C. K.
Gan
,
F.
Ernult
, and
C.
Panagopoulos
,
Nat. Mater.
16
,
898
904
(
2017
).
8.
D.
Maccariello
,
W.
Legrand
,
N.
Reyren
,
K.
Garcia
,
K.
Bouzehouane
,
S.
Collin
,
V.
Cros
, and
A.
Fert
,
Nat. Nanotechnol.
13
,
233
237
(
2018
).
9.
L.
Wang
,
Q.
Feng
,
Y.
Kim
,
R.
Kim
,
K. H.
Lee
,
S. D.
Pollard
,
Y. J.
Shin
,
H.
Zhou
,
W.
Peng
,
D.
Lee
,
W.
Meng
,
H.
Yang
,
J. H.
Han
,
M.
Kim
,
Q.
Lu
, and
T. W.
Noh
,
Nat. Mater.
17
,
1087
1094
(
2018
).
10.
A.
Moser
,
H. J.
Hug
,
I.
Parashikov
,
B.
Stiefel
,
O.
Fritz
,
H.
Thomas
,
A.
Baratoff
,
H.-J.
Güntherodt
, and
P.
Chaudhari
,
Phys. Rev. Lett.
74
,
1847
(
1995
).
11.
E. W. J.
Straver
,
J. E.
Hoffman
,
O. M.
Auslaender
,
D.
Rugar
, and
K. A.
Moler
,
Appl. Phys. Lett.
93
,
172514
(
2008
).
12.
O. M.
Auslaender
,
L.
Luan
,
E. W. J.
Straver
,
J. E.
Hoffman
,
N. C.
Koshnick
,
E.
Zeldov
,
D. A.
Bonn
,
R.
Liang
,
W. N.
Hardy
, and
K. A.
Moler
,
Nat. Phys.
5
,
35
39
(
2009
).
13.
E.
Nazaretski
,
J. P.
Thibodaux
,
I.
Vekhter
,
L.
Civale
,
J. D.
Thompson
, and
R.
Movshovich
,
Appl. Phys. Lett.
95
,
262502
(
2009
).
14.
J.
Kim
,
L.
Civale
,
E.
Nazaretski
,
N.
Haberkorn
,
F.
Ronning
,
A. S.
Sefat
,
T.
Tajima
,
B. H.
Moeckly
,
J. D.
Thompson
, and
R.
Movshovich
,
Supercond. Sci. Technol.
25
,
112001
(
2012
).
15.
D.
Wulferding
,
I.
Yang
,
J.
Yang
,
M.
Lee
,
H. C.
Choi
,
S. L.
Bud’ko
,
P. C.
Canfield
,
H. W.
Yeom
, and
J.
Kim
,
Phys. Rev. B
92
,
014517
(
2015
).
16.
D.
Wulferding
,
G.
Kim
,
H.
Kim
,
I.
Yang
,
E. D.
Bauer
,
F.
Ronning
,
R.
Movshovich
, and
J.
Kim
,
Appl. Phys. Lett.
117
,
252601
(
2020
).
17.
M.
Roseman
and
P.
Grütter
,
Rev. Sci. Instrum.
71
,
3782
3787
(
2000
).
18.
A.
Volodin
,
K.
Temst
,
C.
Van Haesendonck
, and
Y.
Bruynseraede
,
Rev. Sci. Instrum.
71
,
4468
4473
(
2000
).
19.
M.
Liebmann
,
A.
Schwarz
,
S. M.
Langkat
, and
R.
Wiesendanger
,
Rev. Sci. Instrum.
73
,
3508
3514
(
2002
).
20.
Y.
Seo
,
P.
Cadden-Zimansky
, and
V.
Chandrasekhar
,
Appl. Phys. Lett.
87
,
103103
(
2005
).
21.
C.
Israel
,
C.
Hyun
,
A.
de Lozanne
,
S.
Phark
, and
Z. G.
Khim
,
Rev. Sci. Instrum.
77
,
023704
(
2006
).
22.
T.-M.
Chuang
and
A.
de Lozanne
,
Rev. Sci. Instrum.
78
,
053710
(
2007
).
23.
E.
Nazaretski
,
K. S.
Graham
,
J. D.
Thompson
,
J. A.
Wright
,
D. V.
Pelekhov
,
P. C.
Hammel
, and
R.
Movshovich
,
Rev. Sci. Instrum.
80
,
083704
(
2009
).
24.
Ö.
Karcı
,
M.
Dede
, and
A.
Oral
,
Rev. Sci. Instrum.
85
,
103705
(
2014
).
25.
J.
Yang
,
I.
Yang
,
Y. W.
Kim
,
D.
Shin
,
J.
Jeong
,
D.
Wulferding
,
H. W.
Yeom
, and
J.
Kim
,
Rev. Sci. Instrum.
87
,
023704
(
2016
).
26.
Ö.
Karc
,
Ü.
Çelik
, and
A.
Oral
,
Rev. Sci. Instrum.
91
,
013703
(
2020
).
27.
N.
Suehira
,
Y.
Tomiyoshi
,
Y.
Sugawara
, and
S.
Morita
,
Rev. Sci. Instrum.
72
,
2971
2976
(
2001
).
28.
X.-L.
Qi
,
R.
Li
,
J.
Zang
, and
S.-C.
Zhang
,
Science
323
,
1184
1187
(
2009
).
29.
X.
Ma
,
C. J. O.
Reichhardt
, and
C.
Reichhardt
,
Phys. Rev. B
97
,
214521
(
2018
).
30.
B. H.
November
,
J. D.
Sau
,
J. R.
Williams
, and
J. E.
Hoffman
, arXiv:1905.09792 (
2019
).
31.
X.
Ma
,
C. J. O.
Reichhardt
, and
C.
Reichhardt
,
Phys. Rev. B
101
,
024514
(
2020
).
32.
M.
Fouaidy
,
G.
Martinet
,
N.
Hammoudi
,
F.
Chatelet
,
S.
Blivet
,
A.
Olivier
, and
H.
Saugnac
, “Full characterization at low temperature of piezoelectric actuators used for SRF cavities active tuning,” in
Proceedings of the 2005 Particle Accelerator Conference,
Knoxville, TN
,
2006
.
33.
G.
Martinet
,
S.
Blivet
,
F.
Chatelet
,
M.
Fouaidy
,
N.
Hammoudi
,
A.
Olivier
, and
H.
Saugnac
, “Low temperature properties of piezoelectric actuators used in SRF cavities cold tuning systems,” in
Proceedings of EPAC
(
European Physical Society Accelerator Group
,
Edinburgh
,
2006
), pp.
390
392
.
34.
T.
Fukuma
,
M.
Kimura
,
K.
Kobayashi
,
K.
Matsushige
, and
H.
Yamada
,
Rev. Sci. Instrum.
76
,
053704
(
2005
).
35.
H.
Idzuchi
,
F.
Pientka
,
K.-F.
Huang
,
K.
Harada
,
Ö.
Gül
,
Y. J.
Shin
,
L. T.
Nguyen
,
N. H.
Jo
,
D.
Shindo
,
R. J.
Cava
,
P. C.
Canfield
, and
P.
Kim
,
Nat. Commun.
12
,
5332
(
2021
).
You do not currently have access to this content.