Fabless Quantum Chip Design and Commercial Production
Pith reviewed 2026-06-27 00:25 UTC · model grok-4.3
The pith
Superconducting quantum chips can shift to a fabless-foundry model only when supported by certified PDKs, PCell design, SPICE-Q simulation, Q-EDA automation, and a tradable IP market.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The paper claims that a fabless quantum-chip design and production architecture centered on the SPICE-Q multiphysics simulation framework connects process-certified quantum PDKs, parameterized device cells, traceable model cards, SPICE-Q physical modeling languages, unified Q-EDA flows, foundry sign-off rules, cryogenic test feedback, and reusable quantum IP, allowing design firms to prepare verified tape-outs under standardized process constraints and moving the field toward scalable, manufacturable superconducting quantum chips.
What carries the argument
The SPICE-Q multiphysics simulation framework, which supplies cross-physics modeling and supports the full chain of standardized PDKs, PCell parameterization, Q-EDA flows, and IP reuse in the proposed ecosystem.
If this is right
- Design firms can outsource fabrication while submitting verified tape-outs under process constraints.
- Repetitive device debugging, process exploration, and low-level layout effort decrease across projects.
- Economic value grows through reusable quantum IP and a functioning tradable market.
- The overall path leads to more scalable and commercially manufacturable superconducting quantum chips.
Where Pith is reading between the lines
- Smaller design teams without fabrication access could enter the field more readily once the interfaces exist.
- Smooth integration of test feedback into the models could shorten iteration times beyond what vertical integration currently allows.
- The same interface structure might later support modular chip designs assembled from multiple IP sources.
Load-bearing premise
The pillars of certified PDKs, PCell design, accurate SPICE-Q simulation, Q-EDA automation, and a tradable IP market can be developed until model predictions match cryogenic test results reliably enough for tape-outs.
What would settle it
A completed design created with the proposed PDK and SPICE-Q models that passes foundry sign-off rules yet produces measured cryogenic performance outside the predicted range would show the interfaces are not yet sufficient.
read the original abstract
This paper proposes a fabless quantum-chip design and production architecture for superconducting quantum computing, centered on the SPICE-Q multiphysics simulation framework. The proposed ecosystem connects process-certified quantum PDKs, parameterized device cells, traceable model cards, SPICE-Q physical modeling languages, unified Q-EDA flows, foundry sign-off rules, cryogenic test feedback, and reusable quantum IP. In this model, design firms do not merely outsource fabrication; they prepare verified tape-outs under standardized process constraints and calibrated physical models. Its economic value lies in reducing repetitive device debugging, process exploration, and low-level layout effort, while its feasibility depends on PDK maturity, foundry yield, cryogenic test throughput, model-prediction accuracy, data-feedback mechanisms, and IP licensing boundaries. We argue that superconducting quantum chips can move from the current largely vertically integrated development model toward a fabless-foundry ecosystem only when hardware design is supported by standardized, verifiable, and reusable software and process interfaces. The required pillars are certified PDKs, PCell-based parameterized design, SPICE-Q cross-physics simulation, end-to-end Q-EDA automation, and a tradable quantum-IP market. By adapting lessons from the classical semiconductor industry to quantum hardware, this framework defines a path toward scalable, manufacturable, and commercially reusable superconducting quantum-chip design.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper proposes a fabless quantum-chip design and production architecture for superconducting quantum computing, centered on the SPICE-Q multiphysics simulation framework. It argues that the transition from vertically integrated models to a fabless-foundry ecosystem requires certified PDKs, PCell-based parameterized design, SPICE-Q cross-physics simulation, end-to-end Q-EDA automation, and a tradable quantum-IP market. Design firms would prepare verified tape-outs under standardized constraints, with economic value in reduced debugging and layout effort; feasibility hinges on PDK maturity, yield, test throughput, model accuracy, and IP boundaries.
Significance. If the listed pillars can be realized with sufficient standardization and predictive accuracy, the framework could enable specialization, IP reuse, and cost reduction in quantum hardware development by adapting classical semiconductor practices, potentially accelerating commercial scalability.
major comments (2)
- [Abstract] Abstract: The feasibility discussion asserts that model-prediction accuracy and cryogenic test feedback can suffice for reliable tape-outs once the pillars (certified PDKs, SPICE-Q, etc.) mature, but provides no quantitative targets, error bounds, preliminary validation data, or references to existing quantum EDA efforts that would support this assumption.
- [Abstract] Abstract: The central claim that a fabless ecosystem is possible 'only when' the five pillars are in place is presented as definitional without analysis of partial implementations or existing partial progress in quantum process design kits that might test the necessity or sufficiency of all elements simultaneously.
minor comments (1)
- [Abstract] Abstract: The abstract is lengthy and repetitive in listing the pillars; condensing it would improve readability without loss of content.
Simulated Author's Rebuttal
We thank the referee for the constructive comments on our proposal. The manuscript is a conceptual architecture paper rather than an experimental validation study, which shapes our responses below. We address each major comment point by point.
read point-by-point responses
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Referee: [Abstract] Abstract: The feasibility discussion asserts that model-prediction accuracy and cryogenic test feedback can suffice for reliable tape-outs once the pillars (certified PDKs, SPICE-Q, etc.) mature, but provides no quantitative targets, error bounds, preliminary validation data, or references to existing quantum EDA efforts that would support this assumption.
Authors: The paper is a high-level proposal outlining an ecosystem architecture and does not present new experimental data, quantitative targets, or error bounds, as these would require dedicated validation studies beyond its scope. We will revise the abstract and main text to include references to existing quantum EDA and PDK efforts (such as prior work on quantum process design kits and multiphysics simulators) and to explicitly frame the feasibility discussion as dependent on future maturation of the pillars, supported by classical semiconductor precedents. This addresses the lack of supporting references while maintaining the proposal nature of the work. revision: partial
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Referee: [Abstract] Abstract: The central claim that a fabless ecosystem is possible 'only when' the five pillars are in place is presented as definitional without analysis of partial implementations or existing partial progress in quantum process design kits that might test the necessity or sufficiency of all elements simultaneously.
Authors: The 'only when' language is intended to highlight that a complete, standardized fabless model enabling IP trading, automated Q-EDA flows, and reduced per-design debugging requires the full set of pillars operating together, analogous to classical semiconductor ecosystems. We acknowledge that partial implementations of quantum PDKs and simulation tools already exist and deliver incremental value. We will revise the manuscript to add analysis of current partial progress in quantum process design kits, discussing how these efforts test aspects of necessity and sufficiency while noting where gaps remain relative to the full proposed ecosystem. revision: yes
Circularity Check
No significant circularity; architectural proposal without derivations or fitted predictions
full rationale
The manuscript is a forward-looking architectural proposal for a fabless superconducting quantum-chip ecosystem. It defines required pillars (certified PDKs, PCell-based design, SPICE-Q simulation, Q-EDA automation, tradable IP market) as necessary conditions for moving from vertical integration to a foundry model, but presents no equations, fitted parameters, empirical predictions, or derivation chain. The central claim is explicitly conditional on future development of these interfaces and is definitional rather than derived from self-referential inputs. No self-citations, uniqueness theorems, or ansatzes are invoked in a load-bearing way that reduces the argument to its own assumptions. The paper is self-contained as an outline and contains no steps that match the enumerated circularity patterns.
Axiom & Free-Parameter Ledger
axioms (1)
- domain assumption Lessons from the classical semiconductor fabless ecosystem can be directly adapted to superconducting quantum computing hardware
invented entities (2)
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SPICE-Q multiphysics simulation framework
no independent evidence
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Q-EDA flows
no independent evidence
Reference graph
Works this paper leans on
-
[1]
Arute, F., Arya, K., Babbush, R., et al. (2019). Quantum supremacy using a pro- grammablesuperconductingprocessor.Nature, 574(7779), 505–510. https://doi.org/10.1038/s41586- 019-1666-5; arXiv:1910.11333. https://arxiv.org/abs/1910.11333
-
[2]
Reviews of Modern Physics , volume=
Blais, A., Grimsmo, A. L., Girvin, S. M., & Wallraff, A. (2021). Circuit quantum electrodynamics.Reviews of Modern Physics, 93(2), 025005. https://doi.org/10.1103/RevModPhys.93.025005; arXiv:2005.12667. https://arxiv.org/abs/2005.12667
-
[3]
(2002).The theory of open quantum systems
Breuer, H.-P., & Petruccione, F. (2002).The theory of open quantum systems. Oxford University Press
2002
-
[4]
(2025).China Quantum Industry Brief Q4 2025
ChinaQuantum. (2025).China Quantum Industry Brief Q4 2025. Retrieved June 15, 2026, from https://www.chinaquantum.info/
2025
-
[5]
(2023).A process design kit for superconducting components [Whitepaper]
CMC Microsystems. (2023).A process design kit for superconducting components [Whitepaper]. RetrievedJune15, 2026, fromhttps://www.cmc.ca/wp-content/uploads/2023/01/WhitePaper_Superconducting_PDK_2023.pdf
2023
-
[6]
Cross, A. W., Bishop, L. S., Sheldon, S., Nation, P. D., & Gambetta, J. M. (2022). OpenQASM 3: A broader and deeper quantum assembly language.ACM Transac- tions on Quantum Computing, 3(3), Article 12, 1–50. https://doi.org/10.1145/3505636; arXiv:2104.14722. https://arxiv.org/abs/2104.14722
-
[7]
Devoret, M. H., & Schoelkopf, R. J. (2013). Superconducting circuits for quantum information: Anoutlook.Science, 339(6124), 1169–1174. https://doi.org/10.1126/science.1231930
-
[8]
(2024, January 8).China’s 3rd-generation superconductor quantum com- 88 puter comes online
ECNS. (2024, January 8).China’s 3rd-generation superconductor quantum com- 88 puter comes online. RetrievedJune15, 2026, fromhttps://www.ecns.cn/news/sci-tech/2024- 01-08/detail-ihcwrpvv3803845.shtml
2024
-
[9]
(2025).EDA-Q: Electronic design automation for super- conducting quantum chip[Preprint]
EDA-Q Collaboration. (2025).EDA-Q: Electronic design automation for super- conducting quantum chip[Preprint]. arXiv:2502.15386. https://arxiv.org/abs/2502.15386
arXiv 2025
-
[10]
(2026).Chinese quantum computing companies
Entangled Future. (2026).Chinese quantum computing companies. Retrieved June 15, 2026, from https://entangledfuture.com/china/
2026
-
[11]
Surface codes: Towards practical large-scale quantum computation
Fowler, A. G., Mariantoni, M., Martinis, J. M., & Cleland, A. N. (2012). Surface codes: Towards practical large-scale quantum computation.Physical Review A, 86(3), 032324. https://doi.org/10.1103/PhysRevA.86.032324; arXiv:1208.0928. https://arxiv.org/abs/1208.0928
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1103/physreva.86.032324 2012
-
[12]
Gambetta, J. M., Chow, J. M., & Steffen, M. (2017). Building logical qubits in a superconducting quantum computing system.npj Quantum Information, 3, Article 2. https://doi.org/10.1038/s41534-016-0004-0; arXiv:1512.04129. https://arxiv.org/abs/1512.04129
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1038/s41534-016-0004-0 2017
-
[13]
GDSII-to-Wafer Collaboration. (2026).From GDSII to wafer: EDA design flow and data conversion for wafer-scale superconducting quantum chip fabrication[Preprint]. arXiv:2604.11379. https://arxiv.org/abs/2604.11379
Pith/arXiv arXiv 2026
-
[14]
L., & Patterson, D
Hennessy, J. L., & Patterson, D. A. (2019).Computer architecture: A quantita- tive approach(6th ed.). Morgan Kaufmann
2019
-
[15]
(2026).The semiconductor value chain: Fabless, foundries, and IDMs
IB Interview Questions. (2026).The semiconductor value chain: Fabless, foundries, and IDMs. RetrievedJune15, 2026, fromhttps://ibinterviewquestions.com/guides/tmt- investment-banking/semiconductor-value-chain
2026
-
[16]
Kjaergaard, M., Schwartz, M.E., Braumueller, J., Krantz, P., Wang, J.I.-J., Gus- tavsson, S., & Oliver, W. D. (2020). Superconducting qubits: Current state of play.An- nual Review of Condensed Matter Physics, 11, 369–395. https://doi.org/10.1146/annurev- conmatphys-031119-050605; arXiv:1905.13641. https://arxiv.org/abs/1905.13641
-
[17]
Charge insensitive qubit design derived from the Cooper pair box
Koch, J., Yu, T. M., Gambetta, J., Houck, A. A., Schuster, D. I., Majer, J., Blais, A., Devoret, M. H., Girvin, S. M., & Schoelkopf, R. J. (2007). Charge-insensitive qubit design derived from the Cooper pair box.Physical Review A, 76(4), 042319. https://doi.org/10.1103/PhysRevA.76.042319; arXiv:cond-mat/0703002. https://arxiv.org/abs/cond- mat/0703002
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1103/physreva.76.042319 2007
-
[18]
(2024).KQCircuits: KLayout Python library for integrated quantum circuit design[Software documentation]
KQCircuits Documentation. (2024).KQCircuits: KLayout Python library for integrated quantum circuit design[Software documentation]. Retrieved June 15, 2026, from https://iqm-finland.github.io/KQCircuits/
2024
-
[19]
Krantz, P., Kjaergaard, M., Yan, F., Orlando, T. P., Gustavsson, S., & Oliver, W.D.(2019). Aquantumengineer’sguidetosuperconductingqubits.Applied Physics Re- views, 6(2), 021318. https://doi.org/10.1063/1.5089550; arXiv:1904.06560. https://arxiv.org/abs/1904.06560
-
[20]
Litinski, D. (2019). A game of surface codes: Large-scale quantum computing with lattice surgery.Quantum, 3, 128. https://doi.org/10.22331/q-2019-03-05-128
-
[21]
Macher, J. T., Mowery, D. C., & Simcoe, T. S. (2008). e-Business and disintegra- 89 tion of the semiconductor industry value chain.Industry and Innovation, 15(3), 155–181. https://doi.org/10.1080/13662710802033872
-
[22]
Mack, C. A. (2011). Fifty years of Moore’s law.IEEE Transactions on Semicon- ductor Manufacturing, 24(2), 202–207. https://doi.org/10.1109/TSM.2010.2096437
-
[23]
McDonald, M., et al. (2022). Laser-annealing Josephson junctions for yielding scaled-up superconducting quantum processors.npj Quantum Information, 8, Article 60. https://doi.org/10.1038/s41534-021-00464-5
-
[24]
McRae, C. R. H., Wang, H., Gao, J., Vissers, M. R., Brecht, T., Dunsworth, A., Pappas, D. P., & Mutus, J. Y. (2020). Materials loss measurements using su- perconducting microwave resonators.Review of Scientific Instruments, 91(9), 091101. https://doi.org/10.1063/5.0017378; arXiv:2006.04718. https://arxiv.org/abs/2006.04718
-
[25]
(1980).Introduction to VLSI systems
Mead, C., & Conway, L. (1980).Introduction to VLSI systems. Addison-Wesley
1980
-
[26]
K., Shanks, W
Minev, Z. K., Shanks, W. E., & Gambetta, J. M. (2021).Qiskit Metal: An open- source framework for quantum device design and analysis[Conference presentation]. IBM Research/APSMarchMeeting. RetrievedJune15, 2026, fromhttps://research.ibm.com/publications/a- framework-for-quantum-device-designproject-qiskit-metal
2021
-
[27]
Levenson-Falk, E. M., & Shanto, S. A. (2025). A review of design concerns in superconducting quantum circuits.Materials for Quantum Technology, 5, 022003. arXiv:2411.16967. https://arxiv.org/abs/2411.16967
arXiv 2025
-
[28]
Mueller, C., Cole, J. H., & Lisenfeld, J. (2019). Towards understanding two- level-systems in amorphous solids: Insights from quantum circuits.Reports on Progress in Physics, 82(12), 124501. https://doi.org/10.1088/1361-6633/ab3a7e; arXiv:1705.01108. https://arxiv.org/abs/1705.01108
-
[29]
Murray, C.E., Calusine, G., Melville, A., etal. (2021).Optimizing frequency allo- cation for fixed-frequency superconducting quantum processors[Preprint]. arXiv:2112.01634. https://arxiv.org/abs/2112.01634
arXiv 2021
-
[30]
(2024).How to build a quantum supercomputer: Scaling challenges and opportunities[Preprint]
National Academies. (2024).How to build a quantum supercomputer: Scaling challenges and opportunities[Preprint]. arXiv:2411.10406. https://arxiv.org/abs/2411.10406
Pith/arXiv arXiv 2024
-
[31]
Hierarchical surface code for network quantum computing with modules of arbitrary size
Nickerson, N. H., Li, Y., & Benjamin, S. C. (2016). Hierarchical surface code for network quantum computing with modules of arbitrary size.Nature Commu- nications, 7, Article 11185. https://doi.org/10.1038/ncomms11185; arXiv:1509.07796. https://arxiv.org/abs/1509.07796
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1038/ncomms11185 2016
-
[32]
Black-box superconducting circuit quantization
Nigg, S. E., Paik, H., Vlastakis, B., Kirchmair, G., Shankar, S., Frunzio, L., Schoelkopf, R.J., &Girvin, S.M.(2012). Black-boxsuperconductingcircuitquantization. Physical Review Letters, 108(24), 240502. https://doi.org/10.1103/PhysRevLett.108.240502; arXiv:1204.0587. https://arxiv.org/abs/1204.0587
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1103/physrevlett.108.240502 2012
-
[33]
(2022).OpenQASM 3 language specification and tooling[Technical specification]
OpenQASM Working Group. (2022).OpenQASM 3 language specification and tooling[Technical specification]. Retrieved June 15, 2026, from https://openqasm.com/ 90
2022
-
[34]
Murray, C. E. (2021). Material matters in superconducting qubits.Materials Sci- ence and Engineering: R: Reports, 146, 100646. https://doi.org/10.1016/j.mser.2021.100646; arXiv:2106.05919. https://arxiv.org/abs/2106.05919
-
[35]
Preskill, J. (2018). Quantum computing in the NISQ era and beyond.Quantum, 2, 79. https://doi.org/10.22331/q-2018-08-06-79; arXiv:1801.00862. https://arxiv.org/abs/1801.00862
work page internal anchor Pith review Pith/arXiv arXiv doi:10.22331/q-2018-08-06-79 2018
-
[36]
(2025).QPDK: Superconducting quantum process design kit[Softwaredocumentation]
QPDK Documentation. (2025).QPDK: Superconducting quantum process design kit[Softwaredocumentation]. RetrievedJune15, 2026, fromhttps://gdsfactory.github.io/quantum- rf-pdk/
2025
-
[37]
QuIRC Collaboration. (2023).Co-designed superconducting architecture for lat- tice surgery of surface codes with Quantum Interface Routing Card[Preprint]. arXiv:2312.01246. https://arxiv.org/abs/2312.01246
arXiv 2023
-
[38]
C., Larson, J., Ostrowski, J., & Humble, T
Shaydulin, R., Lotshaw, P. C., Larson, J., Ostrowski, J., & Humble, T. S. (2023). Parameter transfer for quantum approximate optimization of weighted MaxCut.ACM Transactions on Quantum Computing, 4(3), Article19, 1–15. https://doi.org/10.1145/3606246
-
[39]
Shi, Y., et al. (2024).Efficient frequency allocation for superconducting quan- tum processors using improved optimization techniques[Preprint]. arXiv:2410.20283. https://arxiv.org/abs/2410.20283
arXiv 2024
-
[40]
(2026).10+ companies leading the quantum technologies race in China
The Quantum Insider. (2026).10+ companies leading the quantum technologies race in China. Retrieved June 15, 2026, from https://thequantuminsider.com/
2026
-
[41]
Weste, N. H. E., & Harris, D. M. (2011).CMOS VLSI design: A circuits and systems perspective(4th ed.). Addison-Wesley
2011
-
[42]
Y., & Clark, K
Baldwin, C. Y., & Clark, K. B. (2000).Design rules, volume 1: The power of modularity. MIT Press
2000
-
[43]
Langlois, R.N., &Robertson, P.L.(1992). Networksandinnovationinamodular system: Lessons from the microcomputer and stereo component industries.Research Policy, 21(4), 297–313. https://doi.org/10.1016/0048-7333(92)90030-8
-
[44]
Sturgeon, T. J. (2002). Modular production networks: A new American model of industrialorganization.Industrial and Corporate Change, 11(3), 451–496. https://doi.org/10.1093/icc/11.3.451
-
[45]
(2025).Quantum Technology Monitor 2025: The year of quantum: From concept to reality in 2025
McKinsey & Company. (2025).Quantum Technology Monitor 2025: The year of quantum: From concept to reality in 2025. Retrieved June 16, 2026, from https://www.mckinsey.com/~/media/mckinsey/business%20functions/mckinsey%20digital/our%20insights/the%20year%20of%20quantum%20from%20concept%20to%20reality%20in%202025/quantum- monitor-2025.pdf
2025
-
[46]
Place, A. P. M., Rodgers, L. V. H., Mundada, P., Smitham, B. M., Fitzpatrick, M., Leng, Z., Premkumar, A., Bryon, J., Vrajitoarea, A., Sussman, S., Cheng, G., Mad- havan, T., Babla, H. K., Le, X. H., Gang, Y., Jaeck, B., Gyenis, A., Yao, N., Cava, R. J., de Leon, N. P., & Houck, A. A. (2021). New material platform for superconducting trans- mon qubits wit...
-
[47]
Reed, M. D., Johnson, B. R., Houck, A. A., DiCarlo, L., Chow, J. M., Schus- ter, D. I., Frunzio, L., & Schoelkopf, R. J. (2010). Fast reset and suppressing spon- taneous emission of a superconducting qubit.Applied Physics Letters, 96(20), 203110. https://doi.org/10.1063/1.3435463
-
[48]
Barends, R., Kelly, J., Megrant, A., Veitia, A., Sank, D., Jeffrey, E., White, T. C., Mutus, J., Fowler, A. G., Campbell, B., Chen, Y., Chen, Z., Chiaro, B., Dunsworth, A., Neill, C., O’Malley, P., Roushan, P., Vainsencher, A., Wenner, J., Korotkov, A. N., Cleland, A. N., & Martinis, J. M. (2014). Superconducting quantum circuits at the surface codethresh...
-
[49]
(2020).SkyWater Open Source PDK: Open source pro- cess design kit for SkyWater Technology Foundry’s 130nm node[Software documentation]
SkyWater PDK Authors. (2020).SkyWater Open Source PDK: Open source pro- cess design kit for SkyWater Technology Foundry’s 130nm node[Software documentation]. Retrieved June 16, 2026, from https://github.com/google/skywater-pdk
2020
-
[50]
InProceedings of the Conference on Fairness, Accountability, and Transparency (FAT* ’19)
Mitchell, M., Wu, S., Zaldivar, A., Barnes, P., Vasserman, L., Hutchinson, B., Spitzer, E., Raji, I. D., & Gebru, T. (2019). Model cards for model reporting. In Proceedings of the Conference on Fairness, Accountability, and Transparency(pp. 220– 229). ACM. https://doi.org/10.1145/3287560.3287596
-
[51]
Scientific Data3(1), 1–9 (2016), https://doi.org/10.1038/sdata.2016.18
Wilkinson, M. D., Dumontier, M., Aalbersberg, I. J., Appleton, G., Axton, M., Baak, A., Blomberg, N., Boiten, J.-W., da Silva Santos, L. B., Bourne, P. E., et al. (2016). The FAIR Guiding Principles for scientific data management and stewardship.Scientific Data, 3, Article 160018. https://doi.org/10.1038/sdata.2016.18
-
[52]
Shanto, S., Kuo, A., Miyamoto, C., Zhang, H., Maurya, V., Vlachos, E., Hecht, M., Shum, C. W., & Levenson-Falk, E. (2024). SQuADDS: A validated design database and simulation workflow for superconducting qubit design.Quantum, 8, 1465. https://doi.org/10.22331/q-2024-09-09-1465
-
[53]
Kunasaikaran, J., Mato, K., & Wille, R. (2024). A framework for the design and realization of alternative superconducting quantum architectures. In2024 IEEE 54th International Symposium on Multiple-Valued Logic (ISMVL)(pp. 91–96). IEEE
2024
-
[54]
Geller, M. R., & Fang, M. (2015). Tunable coupler for superconducting Xmon qubits: Perturbativenonlinearmodel.Physical Review A, 92(1), 012320. https://doi.org/10.1103/PhysRevA.92.012320
-
[55]
Yan, F., Krantz, P., Sung, Y., Kjaergaard, M., Campbell, D. L., Orlando, T. P., Gustavsson, S., & Oliver, W. D. (2018). Tunable coupling scheme for implementing high- fidelitytwo-qubitgates.Physical Review Applied, 10(5), 054062. https://doi.org/10.1103/PhysRevApplied.10.054062
-
[56]
(2021).Quantum Intermediate Representation (QIR) specifi- cation[Technical specification]
QIR Alliance. (2021).Quantum Intermediate Representation (QIR) specifi- cation[Technical specification]. Retrieved June 16, 2026, from https://github.com/qir- alliance/qir-spec
2021
-
[57]
(2021).P7130: Standard for Quantum Technolo- gies Definitions[Standards project]
IEEE P7130 Working Group. (2021).P7130: Standard for Quantum Technolo- gies Definitions[Standards project]. IEEE Standards Association. Retrieved June 16, 2026, from https://standards.ieee.org/ieee/7130/10680/ 92
2021
-
[58]
(2002).Reuse methodology manual for system-on-a- chip designs(3rd ed.)
Keating, M., & Bricaud, P. (2002).Reuse methodology manual for system-on-a- chip designs(3rd ed.). Springer
2002
-
[59]
Castellanos-Beltran, M. A., & Lehnert, K. W. (2008). Widely tunable paramet- ric amplifier based on a SQUID array resonator.Applied Physics Letters, 91, 083509. https://doi.org/10.1063/1.2773988
-
[60]
Macklin, C., O’Brien, K., Hover, D., Schwartz, M. E., Bolkhovsky, V., Zhang, X., Oliver, W. D., & Siddiqi, I. (2015). A near-quantum-limited Josephson traveling-wave parametricamplifier.Science, 350(6258), 307–310. https://doi.org/10.1126/science.aaa8525
-
[61]
Google Quantum AI. (2023). Suppressing quantum errors by scaling a surface code logical qubit.Nature, 614, 676–681. https://doi.org/10.1038/s41586-022-05434-1; arXiv:2207.06431. https://arxiv.org/abs/2207.06431
-
[62]
Elucidating Reaction Mechanisms on Quantum Computers
Reiher, M., Wiebe, N., Svore, K. M., Wecker, D., & Troyer, M. (2017). Elucidat- ing reaction mechanisms on quantum computers.Proceedings of the National Academy of Sciences, 114(29), 7555–7560. https://doi.org/10.1073/pnas.1619152114; arXiv:1605.03590. https://arxiv.org/abs/1605.03590
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1073/pnas.1619152114 2017
-
[63]
Blume-Kohout, R., & Young, K. C. (2020). A volumetric framework for quantum computer benchmarks.Quantum, 4, 362. https://doi.org/10.22331/q-2020-11-15-362; arXiv:1904.05546. https://arxiv.org/abs/1904.05546
-
[64]
(2014).A quantum approximate opti- mization algorithm[Preprint]
Farhi, E., Goldstone, J., & Gutmann, S. (2014).A quantum approximate opti- mization algorithm[Preprint]. arXiv:1411.4028. https://arxiv.org/abs/1411.4028
Pith/arXiv arXiv 2014
-
[65]
Applications of single photons to quantum communication and computing
Cerezo, M., Arrasmith, A., Babbush, R., Benjamin, S. C., Endo, S., Fujii, K., McClean, J. R., Mitarai, K., Yuan, X., Cincio, L., & Coles, P. J. (2021). Variational quan- tum algorithms.Nature Reviews Physics, 3, 625–644. https://doi.org/10.1038/s42254- 021-00348-9; arXiv:2012.09265. https://arxiv.org/abs/2012.09265
-
[66]
The IBM Quantum Computer and the IBM Quantum Experience
Santos, A.C.(2017). TheIBMQuantumComputerandtheIBMQuantumExpe- rience.Revista Brasileira de Ensino de Fisica, 39(1), e1301. https://doi.org/10.1590/1806- 9126-RBEF-2016-0155; arXiv:1610.06980. https://arxiv.org/abs/1610.06980
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1590/1806- 2017
-
[67]
(2024).IBM Quantum Computers: Evolution, Performance, and Future Directions[Preprint]
AbuGhanem, M. (2024).IBM Quantum Computers: Evolution, Performance, and Future Directions[Preprint]. arXiv:2410.00916. https://arxiv.org/abs/2410.00916
arXiv 2024
-
[68]
Gidney, C., & Ekera, M. (2021). How to factor 2048 bit RSA integers in 8 hours using 20 million noisy qubits.Quantum, 5, 433. https://doi.org/10.22331/q-2021-04-15- 433; arXiv:1905.09749. https://arxiv.org/abs/1905.09749
-
[69]
Google Quantum AI and Collaborators. (2025). Quantum error correction below the surface code threshold.Nature, 638, 920–926. https://doi.org/10.1038/s41586-024- 08449-y; arXiv:2408.13687. https://arxiv.org/abs/2408.13687
-
[70]
Barren plateaus in quantum neural network training landscapes
McClean, J. R., Boixo, S., Smelyanskiy, V. N., Babbush, R., & Neven, H. (2018). Barren plateaus in quantum neural network training landscapes.Nature Communica- tions, 9, Article 4812. https://doi.org/10.1038/s41467-018-07090-4; arXiv:1803.11173. 93 https://arxiv.org/abs/1803.11173 94
work page internal anchor Pith review Pith/arXiv arXiv doi:10.1038/s41467-018-07090-4 2018
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