13. Bibliography

[AUMFN21]

José C Abadillo-Uriel, Biel Martinez, Michele Filippone, and Yann-Michel Niquet. Two-body wigner molecularization in asymmetric quantum dot spin qubits. Physical Review B, 104(19):195305, 2021.

[AGQ+22]

Christopher R Anderson, Mark F Gyure, Sam Quinn, Andrew Pan, Richard S Ross, and Andrey A Kiselev. High-precision real-space simulation of electrostatically confined few-electron states. AIP Advances, 2022.

[AM76]

N. W. Ashcroft and N. D. Mermin. Solid State Physics. Brooks Cole, 1976.

[BSP16]

Amartya S Banerjee, Phanish Suryanarayana, and John E Pask. Periodic Pulay method for robust and efficient convergence acceleration of self-consistent field iterations. Chemical Physics Letters, 647:31–35, 2016.

[BLQCPLadriere16]

Félix Beaudoin, Dany Lachance-Quirion, W A Coish, and Michel Pioro-Ladrière. Coupling a single electron spin to a microwave resonator: controlling transverse and longitudinal couplings. Nanotechnology, 27(46):464003, 2016.

[BB78]

D Bednarczyk and J Bednarczyk. The approximation of the Fermi–Dirac integral F½(η). Physics Letters A, 64(4):409–410, 1978.

[BSA00]

S. Bednarek, B. Szafran, and J. Adamowski. Solution of the poisson-schrödinger problem for a single-electron transistor. Phys. Rev. B, 61:4461–4464, Feb 2000.

[BP74]

G. L. Bir and G. E. Pikus. Symmetry and Strain-Induced Effects in Semiconductors. Wiley, 1974.

[BMOrdejon+02]

Mads Brandbyge, José-Luis Mozos, Pablo Ordejón, Jeremy Taylor, and Kurt Stokbro. Density-functional method for nonequilibrium electron transport. Physical Review B, 65(16):165401, 2002.

[BF04]

Henrik Bruus and Karsten Flensberg. Many-body quantum theory in condensed matter physics: an introduction. OUP Oxford, 2004.

[BLP+23]

Guido Burkard, Thaddeus D. Ladd, Andrew Pan, John M. Nichol, and Jason R. Petta. Semiconductor spin qubits. Rev. Mod. Phys., 95:025003, 2023.

[CSorensenL04]

L. Childress, A. S. Sørensen, and M. D. Lukin. Mesoscopic cavity quantum electrodynamics with quantum dots. Phys. Rev. A, 69(4):042302, 2004.

[CL05]

W. A. Coish and Daniel Loss. Singlet-triplet decoherence due to nuclear spins in a double quantum dot. Phys. Rev. B, 72:125337, September 2005.

[DD93]

RG Dandrea and CB Duke. Calculation of the Schottky barrier height at the Al/GaAs (001) heterojunction: Effect of interfacial atomic relaxations. Journal of Vacuum Science & Technology A: Vacuum, Surfaces, and Films, 11(4):848–853, 1993.

[DDZ92]

RG Dandrea, CB Duke, and Alex Zunger. Interfacial atomic structure and band offsets at semiconductor heterojunctions. Journal of Vacuum Science & Technology B: Microelectronics and Nanometer Structures Processing, Measurement, and Phenomena, 10(4):1744–1753, 1992.

[Dat97]

Supriyo Datta. Electronic transport in mesoscopic systems. Cambridge University Press, 1997.

[Dat05]

Supriyo Datta. Quantum transport: Atom to transistor. Cambridge University Press, 2005.

[DBK+00]

David P DiVincenzo, Dave Bacon, Julia Kempe, Guido Burkard, and K Birgitta Whaley. Universal quantum computation with the exchange interaction. Nature, 408(6810):339, 2000.

[For93]

Bradley A. Foreman. Effective-mass Hamiltonian and boundary conditions for the valence bands of semiconductor microstructures. Phys. Rev. B, 48:4964–4967, Aug 1993.

[Fuh03]

Andreas Fuhrer. Phase coherence, orbital and spin states in quantum rings. PhD thesis, ETH Zurich, 2003.

[GuccluSGH02]

A. D. Güçlü, Qing Feng Sun, Hong Guo, and R. Harris. Geometric blockade in a quantum dot: transport properties by exact diagonalization. Phys. Rev. B, 66:195327, Nov 2002.

[GHCJ+16]

John King Gamble, Patrick Harvey-Collard, N Tobias Jacobson, Andrew D Baczewski, Erik Nielsen, Leon Maurer, Inès Montaño, Martin Rudolph, MS Carroll, CH Yang, and others. Valley splitting of single-electron Si MOS quantum dots. Applied Physics Letters, 109(25):253101, 2016.

[GJN+15]

John King Gamble, N. Tobias Jacobson, Erik Nielsen, Andrew D. Baczewski, Jonathan E. Moussa, Inès Montaño, and Richard P. Muller. Multivalley effective mass theory simulation of donors in silicon. Phys. Rev. B, 91:235318, Jun 2015.

[GNM+13]

Xujiao Gao, Erik Nielsen, Richard P Muller, Ralph W Young, Andrew G Salinger, Nathan C Bishop, Michael P Lilly, and Malcolm S Carroll. Quantum computer aided design simulation and optimization of semiconductor quantum dots. Journal of Applied Physics, 114(16):164302, 2013.

[Gru10]

Marius Grundmann. Physics of semiconductors. Volume 11. Springer, 2010.

[HKP+07]

R. Hanson, L. P. Kouwenhoven, J. R. Petta, S. Tarucha, and L. M. K. Vandersypen. Spins in few-electron quantum dots. Rev. Mod. Phys., 79:1217–1265, October 2007.

[HL71]

Lars Hedin and Bengt I Lundqvist. Explicit local exchange–correlation potentials. Journal of Physics C: Solid state physics, 4(14):2064, 1971.

[HFJ+17]

T. Hensgens, T. Fujita, L. Janssen, X. Li, C. J. Van Diepen, C. Reichl, W. Wegscheider, S. Das Sarma, and L. M. K. Vandersypen. Quantum simulation of a Fermi-Hubbard model using a semiconductor quantum dot array. Nature (London), 548:70–73, 2017.

[HV56]

C. Herring and E. Vogt. Transport and deformation-potential theory for many-valley semiconductors with anisotropic scattering. Phys. Rev., 101(3):944, 1956.

[HWK+14]

Y. H. Huo, B. J. Witek, S. Kumar, J. X. Cardenas, J. X. Zhang, N. Akopian, R. Singh, E. Zallo, R. Grifone, D. Kriegner, R. Trotta, F. Ding, J. Stangl, V. Zwiller, G. Bester, A. Rastelli, and O. G. Schmidt. A light-hole exciton in a quantum dot. Nature Physics, 10(1):46–51, 2014.

[Jac99]

J. D. Jackson. Classical Electrodynamics. John Wiley & Sons, 1999.

[JBG+21]

Benjamin Joecker, Andrew D Baczewski, John K Gamble, Jarryd J Pla, André Saraiva, and Andrea Morello. Full configuration interaction simulations of exchange-coupled donors in silicon using multi-valley effective mass theory. New Journal of Physics, 23(7):073007, 2021.

[Kan20]

Markus Kantner. Electrically Driven Quantum Dot Based Single-photon Sources: Modeling and Simulation. Springer Nature, 2020.

[KSS+14]

Dohun Kim, Zhan Shi, CB Simmons, DR Ward, JR Prance, Teck Seng Koh, John King Gamble, DE Savage, MG Lagally, Mark Friesen, and others. Quantum control and process tomography of a semiconductor quantum dot hybrid qubit. Nature, 511(7507):70–74, 2014.

[KKN+18]

Haruki Kiyama, Alexander Korsch, Naomi Nagai, Yasushi Kanai, Kazuhiko Matsumoto, Kazuhiko Hirakawa, and Akira Oiwa. Single-electron charge sensing in self-assembled quantum dots. Scientific reports, 8(1):1–6, 2018.

[KGF+12]

Teck Seng Koh, John King Gamble, Mark Friesen, MA Eriksson, and SN Coppersmith. Pulse-gated quantum-dot hybrid qubit. Physical review letters, 109(25):250503, 2012.

[Lev02]

Jeremy Levy. Universal quantum computation with spin-1/2 pairs and heisenberg exchange. Phys. Rev. Lett., 89:147902, Sep 2002.

[LD98]

Daniel Loss and David P. DiVincenzo. Quantum computation with quantum dots. Phys. Rev. A, 57:120–126, January 1998.

[LK55]

J. M. Luttinger and W. Kohn. Motion of electrons and holes in perturbed periodic fields. Phys. Rev., 97:869–883, February 1955.

[Lut56]

JM Luttinger. Quantum theory of cyclotron resonance in semiconductors: general theory. Phys. Rev., 102(4):1030, 1956.

[MBT+13a]

J Medford, Johannes Beil, JM Taylor, SD Bartlett, AC Doherty, EI Rashba, DP DiVincenzo, H Lu, AC Gossard, and Charles M Marcus. Self-consistent measurement and state tomography of an exchange-only spin qubit. Nature nanotechnology, 8(9):654, 2013.

[MBT+13b]

J. Medford, J. Beil, J. M. Taylor, E. I. Rashba, H. Lu, A. C. Gossard, and C. M. Marcus. Quantum-dot-based resonant exchange qubit. Phys. Rev. Lett., 111:050501, Jul 2013.

[NC10]

Michael A. Nielsen and Isaac L. Chuang. Quantum computation and quantum information. Cambridge University Press, 2010.

[PS12]

Alexander Pergament and Genrikh Stefanovich. Insulator-to-metal transition in vanadium sesquioxide: does the Mott criterion work in this case? Phase Transitions, 85(3):185–194, 2012.

[PJT+05]

J. R. Petta, A. C. Johnson, J. M. Taylor, E. A. Laird, A. Yacoby, M. D. Lukin, C. M. Marcus, M. P. Hanson, and A. C. Gossard. Coherent manipulation of coupled electron spins in semiconductor quantum dots. Science, 309(5744):2180–2184, 2005.

[PLadriereOT+08]

M. Pioro-Ladrière, T. Obata, Y. Tokura, Y.S. Shin, T. Kubo, K. Yoshida, T. Taniyama, and S. Tarucha. Electrically driven single-electron spin resonance in a slanting Zeeman field. Nat. Phys., 4(10):776–779, 2008.

[Pla08]

Edward Platt. WKB Analysis of Tunnel Coupling in a Simple Model of a Double Quantum Dot. PhD thesis, University of Waterloo, 2008.

[PFP+23]

Raphaël J Prentki, Felix Fehse, Pericles Philippopoulos, Chenyi Zhou, Hong Guo, Marek Korkusinski, and Félix Beaudoin. Robust sub-Kelvin simulations of quantum dot charge sensing. In 2023 International Conference on Simulation of Semiconductor Processes and Devices (SISPAD). Kobe, Japan, 2023. IEEE.

[PHZ+22]

Raphaël J Prentki, Mohammed Harb, Chenyi Zhou, Pericles Philippopoulos, Félix Beaudoin, Vincent Michaud-Rioux, and Hong Guo. Tunneling leakage in ultrashort-channel MOSFETs—From atomistics to continuum modeling. Solid-State Electronics, 197:108438, 2022.

[Rei95]

HJ Reittu. Fermi's Golden rule and Bardeen's tunneling theory. American Journal of Physics, 63(10):940–944, 1995.

[RB15]

Maximilian Russ and Guido Burkard. Asymmetric resonant exchange qubit under the influence of electrical noise. Phys. Rev. B, 91:235411, Jun 2015.

[SCalderonC+11]

A. L. Saraiva, M. J. Calderón, Rodrigo B. Capaz, Xuedong Hu, S. Das Sarma, and Belita Koiller. Intervalley coupling for interface-bound electrons in silicon: An effective mass study. Phys. Rev. B, 84:155320, Oct 2011.

[SSP+12]

Zhan Shi, C. B. Simmons, J. R. Prance, John King Gamble, Teck Seng Koh, Yun-Pil Shim, Xuedong Hu, D. E. Savage, M. G. Lagally, M. A. Eriksson, Mark Friesen, and S. N. Coppersmith. Fast hybrid silicon double-quantum-dot qubit. Phys. Rev. Lett., 108:140503, Apr 2012.

[SSW+14]

Zhan Shi, CB Simmons, Daniel R Ward, JR Prance, Xian Wu, Teck Seng Koh, John King Gamble, DE Savage, MG Lagally, Mark Friesen, and others. Fast coherent manipulation of three-electron states in a double quantum dot. Nature communications, 5(1):3020, 2014.

[ST16]

Yun-Pil Shim and Charles Tahan. Charge-noise-insensitive gate operations for always-on, exchange-only qubits. Phys. Rev. B, 93:121410, Mar 2016.

[SN76]

Koichi Shindo and Hisashi Nara. The effective mass equation for the multi-valley semiconductors. Journal of the Physical Society of Japan, 40(6):1640–1644, 1976.

[STN07]

Y. Sun, S. E. Thompson, and T. Nishida. Physics of strain effects in semiconductors and metal-oxide-semiconductor field-effect transistors. Journal of Applied Physics, 101(10):104503, 2007.

[SN81]

Simon M Sze and Kwok K Ng. Physics of semiconductor devices. John Wiley & Sons, 1981.

[SBPP13]

P. Szumniak, S. Bednarek, J. Pawłowski, and B. Partoens. All-electrical control of quantum gates for single heavy-hole spin qubits. Phys. Rev. B, 87:195307, May 2013.

[TMW+21]

L. A. Terrazos, E. Marcellina, Zhanning Wang, S. N. Coppersmith, Mark Friesen, A. R. Hamilton, Xuedong Hu, Belita Koiller, A. L. Saraiva, Dimitrie Culcer, and Rodrigo B. Capaz. Theory of hole-spin qubits in strained germanium quantum dots. Phys. Rev. B, 103:125201, Mar 2021.

[TvdWOT06]

Yasuhiro Tokura, Wilfred G van der Wiel, Toshiaki Obata, and Seigo Tarucha. Coherent single electron spin control in a slanting zeeman field. Phys. Rev. Lett., 96(4):047202, 2006.

[TR04]

A Trellakis and Umberto Ravaioli. Directional effects on bound quantum states for trench oxide quantum wires on (1 0 0)-silicon. Solid-State Electronics, 48(3):367–371, 2004.

[WM08]

Daniel F Walls and Gerard J Milburn. Quantum optics. Springer-Verlag Berlin Heidelberg, 2008.

[Win03]

Roland Winkler. Spin–orbit coupling effects in two-dimensional electron and hole systems. Number 191. Springer Science & Business Media, 2003.