Hybrid Architectures for Topological Quantum Computation: Platform Integration, Device Engineering, and Scalability
Opeyemi Akanbi, Adetoun Adunni Oginni, Monsuru Moshood, Quadri Adewuyi, Boluwatife Oluwasegun, Joshua Ejeka, Enoch Nii-Okai, Olutoye Ransome-Kuti, Adetola Hassan-Kuti, Augusta Imomon, Michael Adelere, Akinsanmi Ige
Asian Journal of Research and Reviews in Physics · pp. 86–107 · Published 10 Mar 2026
10.9734/ajr2p/2026/v10i1219Abstract
Hybrid systems have emerged as one of the most promising pathways toward realizing fault-tolerant topological quantum computation. Although topological phases such as fractional quantum hall states and chiral superconductors host non-Abelian anyons capable of supporting protected quantum information, yet, no single physical platform currently satisfies all the requirements for scalable, controllable, and universal quantum computation. Hybrid systems, which are formed by integrating complementary physical ingredients such as superconductivity, strong spin–orbit coupling, magnetic textures, correlated electron states, and engineered lattice geometries, offer an avenue to overcome these limitations. This review provides hybrid engineering strategies that examine topological quantum computation, beginning with foundational principles of topological phases, anyon models, and braiding-based quantum information processing. We then survey major hybrid platforms, including semiconductor–superconductor nanowires, quantum Hall–superconductor interfaces, magnetic–superconductor systems, and Floquet-engineered topological structures. Across these platforms, we analyze mechanisms for realizing non-Abelian quasiparticles, the current state of experimental progress, and the challenges associated with disorder, quasiparticle poisoning, gap protection, and device scalability, while also evaluating a roadmap/framework for comparing the platforms with regard to device and scalability criteria. We also discuss theoretical proposals for achieving universality beyond Majorana zero modes, including parafermions and Fibonacci anyons in hybrid architectures. By mapping the landscape of materials, designs, and physical mechanisms that enable topological quantum computation, this review highlights the key scientific breakthroughs achieved so far and the critical directions required to transform hybrid systems into a practical quantum technology.
Cited by 1
1 citation reported by external sources — individual citing-article records aren't available to list yet.
Article metrics
Real usage data collected on this platform.
0
Page views
0
PDF downloads
0
Outbound clicks
1
Citations
Views by country
Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".
No views recorded yet.
Traffic sources
Referring site, by host.
No traffic recorded yet.
Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.