IP Library › Granted Patent US 12,615,972
Granted Patent B2
US 12,615,972 · App. 18/251,981 · Granted Apr 28, 2026

Topological quantum field effect transistor

Inventors: Dimitrie Culcer (Sydney, AU); Michael Sears Fuhrer (Clayton, AU); Muhammad Nadeem (Keiraville, AU)
Assignees: Monash University; NewSouth Innovations Pty Limited; University of Wollongong
H10N99/05H10N99/03
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Quick Facts
Patent No.
US 12,615,972
App. No.
18/251,981
Granted
Apr 28, 2026
Kind
B2
Abstract

A transistor comprises a planar layer of a topological material located between a gate electrode and a dielectric layer. The topological material exhibits a topological phase transition between a trivial state and a non-trivial state at a critical electric field strength on application of an electric field in a direction perpendicular to the planar layer. The topological material exhibits a change in bandgap, in the presence of the electric field, having a Rashba spin-dependent bandgap contribution that is at least three times as large as a non-spin-dependent bandgap contribution.

Claims (48)

1 . A structure comprising:

a gate electrode,

a dielectric layer, and

a planar layer of a topological material being separated from the gate electrode by at least the dielectric layer, and having a contact interface with the dielectric layer to generate an electric field-controlled Rashba spin-orbit interaction on application of an electric field thereto,

wherein the topological material exhibits a topological phase transition between a trivial state and a non-trivial state at a critical electric field strength on the application of the electric field,

wherein the gate electrode is configured to apply the electric field across the planar layer in a direction perpendicular to a plane of the planar layer; and

wherein the topological material exhibits a change in bandgap, in presence of the electric field, having a spin-dependent contribution represented by a proportionality constant α R and a non-spin-dependent contribution represented by a proportionality constant α v ; and

wherein α R >α v /3.

2 . The structure of claim 1 , wherein the Rashba spin orbit interaction increases the bandgap of the topological material in the trivial state, and decreases the band gap of the topological material in the non-trivial state.

3 . The structure of claim 1 , wherein the bandgap or a band crossing of the topological material does not lie at a center of a Brillouin zone of the topological material.

4 . The structure of claim 3 , wherein the bandgap or the band crossing lies at corners of the Brillouin zone.

5 . The structure of claim 1 , wherein the planar layer of the topological material is a planar layer of a two-dimensional topological material.

6 . The structure of claim 5 , wherein the two-dimensional topological material is in a form of a thin film with a thickness of two unit cells or less.

7 . The structure of claim 1 , wherein the topological material has a staggered honeycomb lattice structure.

8 . The structure of claim 7 , wherein lattice atoms of the staggered honeycomb lattice structure comprise one or more atoms selected from the group consisting of: As, Sb, Bi.

9 . The structure of claim 7 , wherein the staggered honeycomb lattice is of a form X, XY, or XYZ, where X is selected from the group consisting of As, Sb, Bi, and Y and Z are each independently selected from the group consisting of H, Cl, Br, or F.

10 . The structure of claim 7 , wherein the staggered honeycomb lattice structure as a ratio of atomic SOI (ξ) to Slater-Koster inter-orbital hoping parameter (V spσ ) of greater than 1.

11 . The structure of claim 1 , wherein the bandgap is greater than 10kT or 250 meV when the topological material is in the trivial state.

12 . The structure of claim 1 , wherein the structure further comprises a source electrode in electrical contact with the topological material, and a drain electrode spaced apart from the source electrode and in electrical contact with the topological material.

13 . The structure of claim 1 , wherein the dielectric layer has a dielectric constant greater than 4.

14 . The structure of claim 1 , wherein the planar layer is in a form of a thin film having a thickness of less than 10 nm.

15 . The structure of claim 1 , wherein the structure is a field effect transistor or a component thereof, and the field effect transistor has a subthreshold swing that is less than 60 mV/dec.

16 . The structure of claim 1 , wherein the gate electrode is a first gate electrode and the dielectric layer is a first dielectric layer, the structure further comprising a second gate electrode and a second dielectric layer; wherein

the first gate electrode and the second gate electrode are arranged on opposite sides of the planar layer;

the planar layer of a topological material is separated from the second gate electrode by at least the second dielectric layer, and

the second gate electrode is configured to apply an electric field across the planar layer in a direction perpendicular to the plane of the planar layer.

17 . The structure of claim 16 , wherein the first gate electrode and the second gate electrode are operable independently of one another.

18 . A method of operating the structure according to claim 16 , the method comprising:

applying or modulating a first gate voltage to the first gate electrode and applying or modulating a second gate voltage to the second gate electrode to generate or vary an electric field across the planar layer in a direction perpendicular to a plane of the planar layer; and

switching the topological material between the trivial state and the non-trivial state, and modulating the Rashba spin-orbit interaction to alter the bandgap of the topological material.

19 . A transistor comprising the structure of claim 1 .

20 . A method of operating the structure according to claim 1 , the method comprising:

applying or modulating a gate voltage to the gate electrode to generate or vary an electric field across the planar layer in a direction perpendicular to a plane of the planar layer; and

switching the topological material between the trivial state and the non-trivial state, and modulating the Rashba spin-orbit interaction to alter the bandgap of the topological material.

21 . A structure comprising:

a gate electrode,

a dielectric layer, and

a planar layer of a topological material being separated from the gate electrode by at least the dielectric layer, and having a contact interface with the dielectric layer to generate an electric field-controlled Rashba spin-orbit interaction on application of an electric field thereto,

wherein the topological material exhibits a topological phase transition between a trivial state and a non-trivial state at a critical electric field strength on the application of the electric field,

wherein the gate electrode is configured to apply the electric field across the planar layer in a direction perpendicular to a plane of the planar layer; and

wherein the topological material exhibits a change in bandgap potential having a spin-dependent contribution of magnitude Δ R =α R E z and a non-spin-dependent contribution of magnitude Δ v =α v E z ;

where:

Δ R is the spin-dependent contribution to the change in the bandgap potential;

α R is a proportionality constant representing the spin-dependent contribution to the change in bandgap;

Δ v is the non-spin-dependent contribution to the change in the bandgap potential; and

α v is a proportionality constant representing the non-spin-dependent contribution to the change in the bandgap potential;

E z is a strength of the electric field applied thereto and

wherein α R >α v /3.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2024
From: CULCER, DIMITRIE
To: NEWSOUTH INNOVATIONS PTY LIMITED
Reel/Frame 066148/0408 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2024
From: NADEEM, MUHAMMAD
To: UNIVERSITY OF WOLLONGONG
Reel/Frame 066148/0604 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 17, 2024
From: FUHRER, MICHAEL SEARS
To: MONASH UNIVERSITY
Reel/Frame 066340/0473 →
Priority Claims (1)
AU 2020904052 · Nov 6, 2020 · national
Continuity (1)
Related Publication 20230413700A1 · Dec 21, 2023
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