7 Current-Induced Dynamics of Chiral Magnetic Structures
181
95. X. Zhang, M. Ezawa, Y. Zhou, Magnetic skyrmion logic gates: conversion, duplication and
merging of skyrmions. Sci. Rep. 5, 9400 (2015)
96. S. Sharma, B. Muralidharan, A. Tulapurkar, Proposal for a Domain Wall Nano-Oscillator
driven by Non-uniform Spin Currents. Sci. Rep. 5, 14647 (2015)
97. F. Garcia-Sanchez, J. Sampaio, N. Reyren, V. Cros, J.-V. Kim, A skyrmion-based spin-torque
nano-oscillator. New J. Phys. 18, 075011 (2016)
98. G. Finocchio, M. Di Ventra, K.Y. Camsari, K. Everschor-Sitte, P.K. Amiri, Z. Zeng, The
promise of spintronics for unconventional computing. J. Magn. Magn. Mater. 521, 167506
(2021)
99. J. Grollier, D. Querlioz, K.Y. Camsari, K. Everschor-Sitte, S. Fukami, M.D. Stiles, Neuromorphic spintronics. Nat. Electron. 3, 360–370 (2020)
100. Li, S., Kang, W., Huang, Y., Zhang, X., Zhou, Y., Zhao, W.: Magnetic skyrmion-based artificial
neuron device. Nanotechnology 28, 31LT01 (2017)
101. A. Sengupta, Y. Shim, K. Roy, Proposal for an All-Spin Artificial Neural Network: Emulating
Neural and Synaptic Functionalities Through Domain Wall Motion in Ferromagnets. IEEE
Trans. Biomed. Circuits Syst. 10, 1152–1160 (2016)
102. M. Sharad, C. Augustine, G. Panagopoulos, K. Roy, Spin-Based Neuron Model With DomainWall Magnets as Synapse. IEEE Trans. Nanotechnol. 11, 843–853 (2012)
103. K.M. Song, J.-S. Jeong, B. Pan, X. Zhang, J. Xia, S. Cha, T.-E. Park, K. Kim, S. Finizio,
J. Raabe, J. Chang, Y. Zhou, W. Zhao, W. Kang, H. Ju, S. Woo, Skyrmion-based artificial
synapses for neuromorphic computing. Nat. Electron. 3, 148–155 (2020)
104. X. Wang, Y. Chen, H. Xi, H. Li, D. Dimitrov, Spintronic Memristor Through Spin-TorqueInduced Magnetization Motion. IEEE Electron Device Lett. 30, 294–297 (2009)
105. L. Appeltant, M.C. Soriano, G. Van der Sande, J. Danckaert, S. Massar, J. Dambre, B.
Schrauwen, C.R. Mirasso, I. Fischer, Information processing using a single dynamical node
as complex system. Nat. Commun. 2, 468 (2011)
106. G. Tanaka, T. Yamane, J.B. Héroux, R. Nakane, N. Kanazawa, S. Takeda, H. Numata, D.
Nakano, A. Hirose, Recent advances in physical reservoir computing: A review. Neural Netw.
115, 100–123 (2019)
107. D. Prychynenko, M. Sitte, K. Litzius, B. Krüger, G. Bourianoff, M. Kläui, J. Sinova, K.
Everschor-Sitte, Magnetic Skyrmion as a Nonlinear Resistive Element: A Potential Building
Block for Reservoir Computing. Phys. Rev. Appl. 9, 014034 (2018)
108. D. Pinna, F. Abreu Araujo, J.-V. Kim, V. Cros, D. Querlioz, P. Bessiere, J. Droulez, J. Grollier,
Skyrmion Gas Manipulation for Probabilistic Computing. Phys. Rev. Appl. 9, 064018 (2018)
109. K.Y. Camsari, B.M. Sutton, S. Datta, p-bits for probabilistic spin logic. Appl. Phys. Rev. 6,
011305 (2019)
110. G. Yang, P. Stano, J. Klinovaja, D. Loss, Majorana bound states in magnetic skyrmions. Phys.
Rev. B 93, 224505 (2016)
111. K.M.D. Hals, M. Schecter, M.S. Rudner, Composite Topological Excitations in FerromagnetSuperconductor Heterostructures. Phys. Rev. Lett. 117, 017001 (2016)
112. J. Nothhelfer, Localized Majorana modes in heterostructures - A path towards topological
quantum computation. Master Thesis, JGU Mainz, Germany (2019)
113. S. Rex, I.V. Gornyi, A.D. Mirlin, Majorana bound states in magnetic skyrmions imposed onto
a superconductor. Phys. Rev. B 100, 064504 (2019)
114. N. Kent, N. Reynolds, D. Raftrey, I.T.G. Campbell, S. Virasawmy, S. Dhuey, R.V. Chopdekar,
A. Hierro-Rodriguez, A. Sorrentino, E. Pereiro, S. Ferrer, F. Hellman, P. Sutcliffe, P. Fischer, Creation and confirmation of Hopfions in magnetic multilayer systems. ArXiv preprint,
2010.08674 (2020)
115. J. Barker, O.A. Tretiakov, Static and Dynamical properties of antiferromagnetic skyrmions in
the presence of applied current and temperature. Phys. Rev. Lett. 116, 147203 (2016)
116. X. Zhang, Y. Zhou, M. Ezawa, Antiferromagnetic Skyrmion: Stability, Creation and Manipulation. Sci. Rep. 6, 24795 (2016)
181
95. X. Zhang, M. Ezawa, Y. Zhou, Magnetic skyrmion logic gates: conversion, duplication and
merging of skyrmions. Sci. Rep. 5, 9400 (2015)
96. S. Sharma, B. Muralidharan, A. Tulapurkar, Proposal for a Domain Wall Nano-Oscillator
driven by Non-uniform Spin Currents. Sci. Rep. 5, 14647 (2015)
97. F. Garcia-Sanchez, J. Sampaio, N. Reyren, V. Cros, J.-V. Kim, A skyrmion-based spin-torque
nano-oscillator. New J. Phys. 18, 075011 (2016)
98. G. Finocchio, M. Di Ventra, K.Y. Camsari, K. Everschor-Sitte, P.K. Amiri, Z. Zeng, The
promise of spintronics for unconventional computing. J. Magn. Magn. Mater. 521, 167506
(2021)
99. J. Grollier, D. Querlioz, K.Y. Camsari, K. Everschor-Sitte, S. Fukami, M.D. Stiles, Neuromorphic spintronics. Nat. Electron. 3, 360–370 (2020)
100. Li, S., Kang, W., Huang, Y., Zhang, X., Zhou, Y., Zhao, W.: Magnetic skyrmion-based artificial
neuron device. Nanotechnology 28, 31LT01 (2017)
101. A. Sengupta, Y. Shim, K. Roy, Proposal for an All-Spin Artificial Neural Network: Emulating
Neural and Synaptic Functionalities Through Domain Wall Motion in Ferromagnets. IEEE
Trans. Biomed. Circuits Syst. 10, 1152–1160 (2016)
102. M. Sharad, C. Augustine, G. Panagopoulos, K. Roy, Spin-Based Neuron Model With DomainWall Magnets as Synapse. IEEE Trans. Nanotechnol. 11, 843–853 (2012)
103. K.M. Song, J.-S. Jeong, B. Pan, X. Zhang, J. Xia, S. Cha, T.-E. Park, K. Kim, S. Finizio,
J. Raabe, J. Chang, Y. Zhou, W. Zhao, W. Kang, H. Ju, S. Woo, Skyrmion-based artificial
synapses for neuromorphic computing. Nat. Electron. 3, 148–155 (2020)
104. X. Wang, Y. Chen, H. Xi, H. Li, D. Dimitrov, Spintronic Memristor Through Spin-TorqueInduced Magnetization Motion. IEEE Electron Device Lett. 30, 294–297 (2009)
105. L. Appeltant, M.C. Soriano, G. Van der Sande, J. Danckaert, S. Massar, J. Dambre, B.
Schrauwen, C.R. Mirasso, I. Fischer, Information processing using a single dynamical node
as complex system. Nat. Commun. 2, 468 (2011)
106. G. Tanaka, T. Yamane, J.B. Héroux, R. Nakane, N. Kanazawa, S. Takeda, H. Numata, D.
Nakano, A. Hirose, Recent advances in physical reservoir computing: A review. Neural Netw.
115, 100–123 (2019)
107. D. Prychynenko, M. Sitte, K. Litzius, B. Krüger, G. Bourianoff, M. Kläui, J. Sinova, K.
Everschor-Sitte, Magnetic Skyrmion as a Nonlinear Resistive Element: A Potential Building
Block for Reservoir Computing. Phys. Rev. Appl. 9, 014034 (2018)
108. D. Pinna, F. Abreu Araujo, J.-V. Kim, V. Cros, D. Querlioz, P. Bessiere, J. Droulez, J. Grollier,
Skyrmion Gas Manipulation for Probabilistic Computing. Phys. Rev. Appl. 9, 064018 (2018)
109. K.Y. Camsari, B.M. Sutton, S. Datta, p-bits for probabilistic spin logic. Appl. Phys. Rev. 6,
011305 (2019)
110. G. Yang, P. Stano, J. Klinovaja, D. Loss, Majorana bound states in magnetic skyrmions. Phys.
Rev. B 93, 224505 (2016)
111. K.M.D. Hals, M. Schecter, M.S. Rudner, Composite Topological Excitations in FerromagnetSuperconductor Heterostructures. Phys. Rev. Lett. 117, 017001 (2016)
112. J. Nothhelfer, Localized Majorana modes in heterostructures - A path towards topological
quantum computation. Master Thesis, JGU Mainz, Germany (2019)
113. S. Rex, I.V. Gornyi, A.D. Mirlin, Majorana bound states in magnetic skyrmions imposed onto
a superconductor. Phys. Rev. B 100, 064504 (2019)
114. N. Kent, N. Reynolds, D. Raftrey, I.T.G. Campbell, S. Virasawmy, S. Dhuey, R.V. Chopdekar,
A. Hierro-Rodriguez, A. Sorrentino, E. Pereiro, S. Ferrer, F. Hellman, P. Sutcliffe, P. Fischer, Creation and confirmation of Hopfions in magnetic multilayer systems. ArXiv preprint,
2010.08674 (2020)
115. J. Barker, O.A. Tretiakov, Static and Dynamical properties of antiferromagnetic skyrmions in
the presence of applied current and temperature. Phys. Rev. Lett. 116, 147203 (2016)
116. X. Zhang, Y. Zhou, M. Ezawa, Antiferromagnetic Skyrmion: Stability, Creation and Manipulation. Sci. Rep. 6, 24795 (2016)
