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Quantum Computing Patent Landscape 2026

Quantum Computing Patent Landscape 2026
Competitive Landscape

Quantum Computing Patent Landscape in 2026

The quantum computing patent landscape spans 17,514 families and is heavily concentrated: IBM alone leads by a wide margin, with the top five filers accounting for roughly half the activity among ranked applicants. Annual filings grew steadily through 2023 and remain active, with the most recent periods under-counted due to publication lag.

17,514
Patent families in scope
48%
Top-5 share of ranked filers
+23%
3-yr filing growth (lag-adj.)
United States
Leading jurisdiction
↗ Tap any metric to open the live data in PatSnap Eureka
Published byPatSnap Insights Team··7 min readVerified by PatSnap Eureka data
Overview

IBM leads a concentrated field; Google and Microsoft form a clear second tier

IBM (International Business Machine Corporation) holds the top position with 4,388 patent families — more than 1.8 times the count of second-ranked Google LLC (2,385 families). Microsoft Technology Licensing ranks third at 1,175 families, followed by Origin Quantum Computing Technology (Hefei) at 1,135 and D-Wave Systems at 975.

The top five applicants together account for 48% of combined patent families among the leading filers, signaling strong concentration at the apex. A pronounced tier gap exists between IBM and Google and the rest of the field; the drop from fifth to sixth place (D-Wave at 975 to Northrop Grumman at 761) is sharp.

Leading applicants
#ApplicantPatent familiesShare
1INTERNATIONAL BUSINESS MACHINE CORPORATION4,388
2GOOGLE LLC2,385
3MICROSOFT TECHNOLOGY LICENSING LLC1,175
4ORIGIN QUANTUM COMPUTING TECH (HEFEI) CO LTD1,135
5D WAVE SYSTEMS INC975
6NORTHROP GRUMMAN SYSTEMS CORP761
7BEIJING BAIDU NETCOM SCI & TECH CO LTD643
8IONQ INC546
9FUJITSU LTD485
10RIGETTI & CO INC428
11INTEL CORP428
12IQM FINLAND OY407
13TENCENT TECHNOLOGY (SHENZHEN) CO LTD403
14QUANTINUUM LLC373
15PSIQUANTUM CORP369
16UIPATH INC302
17COMMISSARIAT A LENERGIE ATOMIQUE ET AUX ENERGIES A…295
18YALE UNIVERSITY275
19NEC CORP270
20MASSACHUSETTS INST OF TECH265
↗ Hover a row · click a company to ask Eureka

IBM’s scale implies deep prior-art coverage across quantum algorithms, superconducting hardware, and error correction — raising freedom-to-operate complexity for new entrants. Google’s accelerating trajectory (▲ +18% recent trend) suggests it is narrowing the gap in active filings even while remaining well behind on cumulative stock.

Counts reflect patent families as the primary size measure; one family groups equivalent filings across jurisdictions, avoiding double-counting. IPC and jurisdiction counts are at the patent-record level and can exceed the family total because a single family may carry multiple classifications or national filings.

Source — PatSnap Eureka. Chart shows applicant ranking by patent families; counts are at the patent-family level. Applicant family counts can overlap where a family lists several applicants, so they need not sum to the total in scope.Explore the data →
Trends & Structure

Sustained filing growth through 2023; AI-model computing dominates the technology mix

Two lenses reveal both pace and shape of innovation: the annual filing trend shows when the field accelerated, while the IPC branch composition shows which technical sub-domains attract the most activity.

Annual filing trend

Filings rose sharply from 843 families in 2017 to a recorded peak of 3,113 in 2023, representing roughly 23% growth in recent years. The 2024 figure (2,236) and especially 2025 (907) and 2026 (25) are substantially under-counted due to the 18–24 month publication lag and should not be read as a decline; the underlying filing rate is almost certainly higher than the published count suggests.

Annual filing trendAnnual values from 2017 to 2026, peaking at 3,113 in 2023.843201790520181,80720192,16220202,67320212,84320223,11320232,23620249072025252026↗ Hover for values · click a bar to ask Eureka

Technology composition

G06N (computing based on AI models, which in this context captures quantum algorithm and information-processing patents) dominates with 19,254 records — far exceeding all hardware branches. G06F (digital data processing, 4,145 records), H10N (other electric solid-state devices including superconducting qubits, 3,164), H01L (semiconductor devices, 2,872), and B82Y (nanotechnology, 2,585) form a secondary hardware cluster. The gap between the software/algorithm layer and the hardware layer is a structural feature of the landscape.

Technology compositionG06N · Computing based on AI models leads with 19,254; G06F · Electric digital data processing 4,145.G06N · Computing based o…19,254G06F · Electric digital …4,145H10N · Other electric so…3,164H01L · Semiconductor dev…2,872B82Y · Nanotechnology ap…2,585H03K · Pulse technique &…1,663H04L · Digital informati…821H04B · Transmission (gen…621↗ Hover for values · click a bar to ask Eureka
Source — PatSnap Eureka. IPC record counts can exceed family totals because one family may carry multiple classifications. IPC counts are at the patent-record level — a single family can carry several classes, so class totals exceed the total family count.Explore the data →
Insights

What the competitive structure means for R&D investment

Reading concentration, life-cycle stage, collaboration patterns, and geographic footprint together gives an engineer a clearer picture of where the field is defensible and where it is still open.

Maturity

Field is at maturity stage with plateaued annual filings near peak

Annual filings reached 3,113 families in 2023 and have plateaued near that level, consistent with a maturing technology. Core algorithmic and superconducting-qubit approaches are densely patented; incremental improvements in established directions face high prior-art density. R&D investment is better directed toward differentiated sub-domains — hardware modalities (photonic, trapped-ion, topological) or application layers — rather than re-treading well-covered ground.

Lifecycle: Maturity
Concentration

Top-five concentration at 48% creates high IP barriers for new entrants

With 48% of combined patent families among ranked filers held by just five organizations, freedom-to-operate analysis is essential before product development begins. IBM’s 4,388-family portfolio spans algorithms, hardware, and error-correction, making it the broadest blocking presence. The gap between the top two (IBM, Google) and the rest of the field is large enough that challengers must seek differentiation rather than direct competition across all sub-domains.

High concentration
Collaboration

IBM–subsidiary and IonQ–university pairings are the most active co-filing axes

The most frequent co-filing pairs in the dataset are IBM with IBM Deutschland GmbH (185 joint families) and IBM with IBM United Kingdom Ltd (127), reflecting internal corporate co-assignment. The most strategically significant external collaborations are IonQ with the University of Maryland (66 joint families) and IonQ with Duke University (45), indicating a tight industry–academia link in trapped-ion development. Intel and Delft University of Technology (16 joint families) represent a silicon-spin qubit partnership worth monitoring.

Industry–academia links
Geography

US filing dominance; Europe and PCT channels serve as secondary protection routes

The United States is the primary filing jurisdiction with 10,300 patent records, followed by Europe (EPO) at 3,631 and WIPO (PCT) at 3,276. Australia (1,249) and Canada (966) constitute a secondary English-language tier. Coverage in India (21 records), Singapore (220), and Israel (15) is relatively sparse given those markets’ growing quantum programs, which may represent a protection gap for applicants with global commercialization plans.

US-centric, Europe secondary
Top collaboration links
ApplicantCollaboratorCo-filings
International Business Machine CorporationIBM DEUTSCHLAND GMBH185
International Business Machine CorporationIBM UNITED KINGDOM LTD INTELLECTUAL PROPERTY DEPAR…127
IonQ IncUniversity of Maryland66
IonQ IncDuke University45
International Business Machine CorporationIBM China Co Ltd18
Intel CorporationDelft University of Technology16
International Business Machine CorporationMassachusetts Institute of Technology15
International Business Machine CorporationGoldman Sachs LLC12
RIGETTI & CO INCRIGETTI AUSTRALIA PTY LTD9
International Business Machine CorporationRensselaer Polytechnic Institute8

Co-filing pairs, ranked by the number of jointly-filed patent families.

Source — PatSnap Eureka. Jurisdiction counts are at the patent-record level; one family may appear in multiple jurisdictions.Explore insights →
Leaders

IBM anchors the field; Google and IonQ show the strongest recent momentum

The ranking by patent families reveals a clear leader-challenger structure, while recent filing momentum shows which players are accelerating into the next phase of quantum development.

Leader · IBM

International Business Machine Corporation

IBM holds 4,388 patent families — the largest portfolio in the field — concentrated in quantum algorithms (G06N 10, 2,111 records), superconducting devices (H10N 60, 783 records), and semiconductor fabrication (H01L 39, 510 records). Its recent trend is ▼ -6%, suggesting the pace of new filings is moderating from prior peaks. IBM also shows the broadest collaboration network, co-filing with IBM Deutschland GmbH (185 families), IBM UK (127), MIT (15), and Goldman Sachs (12), indicating active application-layer partnerships.

families: 4,388
Challenger · Google LLC

Google LLC

Google holds 2,385 patent families and is the fastest-growing top-two player at ▲ +18% in recent filings. Its portfolio is concentrated in quantum algorithms (G06N 10, 1,485 records; G06N 99, 371 records) and superconducting hardware (H10N 60, 357 records), closely mirroring IBM’s technical focus but at roughly half the accumulated scale. IonQ (546 families, ▲ +44% recent trend) is the fastest-growing challenger overall, with a distinct focus on trapped-ion hardware (G21K 1, G02F 1) rather than superconducting approaches.

families: 2,385
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Origin Quantum Computing Technology (Hefei)D-Wave Systems Inc+ more
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Leading-applicant momentum (recent 3 yrs, lag-adjusted)
ApplicantRecent (3 yrs)Trend
International Business Machine Corporation1,340▼ -6%
Google LLC658▲ +18%
Microsoft Technology Licensing LLC204▼ -50%
D-Wave Systems Inc74▼ -55%
IonQ Inc251▲ +44%
RIGETTI & CO INC152▲ +33%
Northrop Grumman Systems Corporation11▼ -79%
Fujitsu Limited157▲ 4.0× vs prior 3-yr
Source — PatSnap Eureka. Applicant counts are at the patent-family level; trend figures are from recent versus prior filing periods.Explore players →
Adjacent Branches

Under-served hardware and communications branches adjacent to the core

Five IPC branches show meaningful record counts but represent lower relative shares of the overall landscape, making them adjacent areas worth watching. These are observations of relative sparsity against the dominant G06N cluster — not validated market opportunities.

H03K · Pulse technique & logic circuits

With 1,663 records and a 4% share among IPC classes, pulse and logic circuit design for quantum control electronics is less densely covered than algorithm or qubit-fabrication branches. Quantum hardware systems require highly specialized classical control pulses; innovations here (e.g., room-temperature pulse generators, low-latency feedback circuits) could be technically valuable and face less entrenched prior-art density. An entry path exists through co-development with hardware integrators or system-on-chip suppliers already active in adjacent H01L and H10N branches.

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H04L · Digital information transmission

The H04L branch (digital information transmission) shows 821 records at a 2% share — sparse relative to its likely importance in quantum networking, quantum key distribution, and hybrid classical-quantum communication architectures. As quantum networks move from lab demonstrations toward infrastructure, protocol-level and physical-layer patents in this branch could become strategically important. IonQ’s partial overlap with optical transmission (H04B 10, 69 records at PsiQuantum) and photonic sub-systems suggests that photonic-networking players may be the most natural entrants.

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See all adjacent branches including nanotechnology applications (B82Y), semiconductor devices (H01L), and solid-state devices (H10N) with filing-gap analysis.
H10N · Other electric solid-state devicesB82Y · Nanotechnology applications+ more
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Source — PatSnap Eureka. Branch record counts are at the IPC-record level; sparsity is relative to the dominant G06N cluster, not an absolute measure of commercial opportunity.Explore emerging →
Route Matrix

How leading applicants differ by technology route

Strength of each leader across the main technology routes.

PlayerG06N 10 · Computing based on AI modelsG06N 99 · Computing based on AI modelsH10N 60 · Other electric solid-state devicesB82Y 10 · Nanotechnology applicationsH01L 39 · Semiconductor devices
International Business Machine CorporationStrong — 2,111Emerging — 289Moderate — 783Emerging — 216Moderate — 510
Google LLCStrong — 1,485Moderate — 371Moderate — 357Emerging — 91Emerging — 149
D-Wave Systems IncStrong — 313Strong — 478Moderate — 189Moderate — 132Strong — 260
Microsoft Technology Licensing LLCStrong — 689Emerging — 117Moderate — 141Emerging — 92Emerging — 93
Rigetti & Co IncStrong — 309Moderate — 99AbsentStrong — 159Absent
IonQ IncStrong — 451AbsentAbsentAbsentAbsent
Northrop Grumman Systems CorporationAbsentStrong — 176Moderate — 71Moderate — 86Moderate — 39
Source — PatSnap Eureka. Matrix counts are at the patent-record level; one family may carry multiple IPC codes and appear in multiple routes.Compare in Eureka →
Key Patents

Foundational and most-cited patents

The most-cited families that anchor this space — hover a row and click to open it in Eureka.

Most-cited patents
#PatentCitations
1Analog processor comprising quantum devices373
2Adiabatic quantum computation with superconducting…363
3Fault tolerant scalable modular quantum computer a…340
4Processing Signals in a Quantum Computing System330
5Systems, methods and apparatus for local programmi…285
6Systems, devices, and methods for interconnected p…277
7Band-structure modulation of nano-structures in an…277
8Systems, devices, and methods for analog processing262

Ranked by total forward citations. Citation counts accrue over time, so this list favours older, broadly-cited patents and may include general-purpose work beyond the specific topic; treat it as foundational context rather than a current-activity ranking.

Source — PatSnap Eureka. Most-cited patent families for this query, ranked by total forward citations.Open in Eureka →
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This page was generated using PatSnap Eureka from a limited snapshot of global patent and scientific-literature records. The figures, rankings, charts, and commentary are produced by automated analysis and large-language-model summarisation, and are provided for general information and reference only.

Patent data carries inherent limitations: recent filings (typically the most recent 18–24 months) are under-counted due to standard publication lag; counts may be reported at either a patent-family or a patent-record basis and are not always directly comparable; classification, applicant-name, and citation data may contain errors, duplicates, or omissions; and the underlying search query defines and constrains the scope shown. As a result, the analysis may be incomplete or inaccurate and may not reflect the full technology landscape.

Nothing on this page constitutes an exhaustive prior-art, novelty, freedom-to-operate, or validity search, nor does it constitute legal, financial, investment, or professional advice, and it should not be relied upon as such. Any patent, commercial, or strategic decision should be verified independently and reviewed with qualified patent, legal, and domain professionals. PatSnap makes no warranties, express or implied, as to the accuracy, completeness, or fitness for any particular purpose of the information presented.

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