IP Library › Granted Patent US 12,633,638
Granted Patent B2
US 12,633,638 · App. 18/890,159 · Granted May 19, 2026

Dual microstructured electrodes for radio-frequency waveguide engineering

Inventors: Joseph Haefner (Orlando, FL); Sasan Fathpour (Winter Park, FL)
Assignee: University of Central Florida Research Foundation, Inc.
H01P3/081
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,633,638
App. No.
18/890,159
Granted
May 19, 2026
Kind
B2
Abstract

A system includes a first electrode with a first main portion extending along a longitudinal axis. A plurality of T-shaped sub-electrodes extend laterally from the first main portion with respect to the longitudinal axis. A plurality of inductive sub-electrodes extend laterally from the first main portion with respect to the longitudinal axis. The inductive sub-electrodes interdigitate with the T-shaped sub-electrodes to form an alternating pattern with the T-shaped sub-electrodes in a lengthwise direction with respect to the longitudinal axis. A second electrode with a second main portion extends parallel to the longitudinal axis, with a gap between the second electrode and the T-shaped sub-electrodes.

Claims (49)

1 . A system comprising:

a first electrode with a first main portion extending along a longitudinal axis, wherein a plurality of T-shaped sub-electrodes extend laterally from the first main portion with respect to the longitudinal axis, and wherein a plurality of inductive sub-electrodes extend laterally from the first main portion with respect to the longitudinal axis, wherein the inductive sub-electrodes interdigitate with the T-shaped sub-electrodes to form an alternating pattern with the T-shaped sub-electrodes in a lengthwise direction with respect to the longitudinal axis; and

a second electrode with a second main portion extending parallel to the longitudinal axis, with a gap between the second electrode and the T-shaped sub-electrodes.

2 . The system as recited in claim 1 , wherein the first electrode is symmetrical across the longitudinal axis, wherein the plurality of T-shaped sub-electrodes includes a first array of T-shaped sub-electrodes on a first side of the longitudinal axis, and a second array of T-shaped sub-electrodes on a second side of the longitudinal axis opposite the first side, and wherein the plurality of inductive sub-electrodes includes a first array of inductive sub-electrodes on the first side of the longitudinal axis, and a second array of inductive sub-electrodes on the second side of the longitudinal axis.

3 . The system as recited in claim 2 , wherein the second main portion of the second electrode is on the first side of the longitudinal axis spaced laterally apart from the first array of T-shaped sub-electrodes relative to the longitudinal axis, wherein a third main portion of the second electrode is on the second side of the longitudinal axis spaced laterally apart from the second array of T-shaped sub-electrodes relative to the longitudinal axis.

4 . The system as recited in claim 3 , wherein the first and second electrodes are co-planar and together form a planar structure.

5 . The system as recited in claim 3 , wherein the T-shaped sub-electrodes and the inductive sub-electrodes are microstructures of the first electrode.

6 . The system as recited in claim 5 , wherein for every T-shaped sub-electrode of the first electrode, the second electrode includes an opposed T-shaped electrode microstructure extending laterally therefrom relative to the longitudinal axis.

7 . The system as recited in claim 6 , wherein the second electrode includes a plurality of inductive electrode microstructures extending laterally from the second electrode relative to the longitudinal axis, wherein the plurality of inductive electrode microstructures of the second electrode interdigitate with the T-shaped electrode microstructures of the second electrode to form an alternating pattern with the T-shaped electrode microstructures in a lengthwise direction with respect to the longitudinal axis.

8 . The system as recited in claim 7 , wherein the plurality of T-shaped electrode microstructures and the plurality of inductive electrode microstructures extend laterally inward from each of the first and second main portions of the second electrode relative to the longitudinal axis.

9 . The system as recited in claim 8 , wherein each of the T-shaped sub-electrodes includes:

a lateral base extending laterally from the main portion of the first electrode relative to the longitudinal axis; and

a terminal cross extending laterally from the lateral base,

wherein the lateral base has a first width in a parallel direction that is parallel to the longitudinal axis, and a first length in a lateral direction that is lateral relative to the longitudinal axis,

wherein the terminal cross has a second length in the parallel direction and a second width in the lateral direction, wherein the first width and the second width are equal.

10 . The system as recited in claim 9 , wherein each of the inductive sub-electrodes includes a linear body, extending laterally from the main portion of the first electrode relative to the longitudinal axis,

wherein the linear body has a third length in the lateral direction and a third width in the parallel direction, wherein the third length is shorter than the first length, and wherein the third width is equal to the first and second widths.

11 . The system as recited in claim 10 , wherein adjacent ones of the plurality of T-shaped sub-electrodes are spaced apart from one another by a first gap in the parallel direction.

12 . The system as recited in claim 11 , wherein each of the inductive sub-electrodes is inside a slot bounded by:

two longitudinal edges of the first main portion of the first electrode,

the lateral bases of two adjacent ones of the T-shaped sub-electrodes,

a portion of the terminal cross of a first one of the two adjacent ones of the T-shaped sub-electrodes,

a portion of the terminal cross of a second one of the two adjacent ones of the T-shaped sub-electrodes, and

a second gap between the portions of the terminal crosses of the first and second ones of the two adjacent ones of the T-shaped sub-electrodes.

13 . The system as recited in claim 12 , wherein each of the T-shaped electrode microstructures includes:

a lateral base extending laterally from one of the second or third main portions of the second electrode relative to the longitudinal axis; and

a terminal cross extending laterally from the lateral base,

wherein the lateral base has the first width in the parallel direction, and a fourth length in the lateral direction, wherein the fourth length is longer than the first length, and

wherein the terminal cross of the T-shaped electrode microstructure has the second width in the parallel direction and the first width in the lateral direction.

14 . The system as recited in claim 13 , wherein each of the inductive electrode microstructures includes a linear body, extending laterally from one of the second and third main portions of the second electrode relative to the longitudinal axis,

wherein the linear body has a fifth length in the lateral direction and the third width in the parallel direction relative to the longitudinal axis, wherein the fifth length is longer than the third length.

15 . The system as recited in claim 14 , wherein adjacent ones of the plurality of T-shaped electrode microstructures are spaced apart from one another by the first gap in the parallel direction, and wherein each of the inductive electrode microstructures is inside a slot bounded by:

two longitudinal edges of one of the second and third main portions of the second electrode,

the lateral bases of two adjacent ones of the T-shaped electrode microstructures,

a portion of the terminal cross of a first one of the two adjacent ones of the T-shaped electrode microstructures,

a portion of the terminal cross of a second one of the two adjacent ones of the T-shaped electrode microstructures, and

a second gap between the portions of the terminal crosses of the first and second ones of the two adjacent ones of the T-shaped electrode microstructures.

16 . The system as recited in claim 3 , further comprising:

a first Bragg grating structure or 2-dimensional photonic crystal waveguide extending in a parallel direction that is parallel to the longitudinal axis, wherein the first Bragg grating structure or 2-dimensional photonic crystal waveguide is between the first electrode and the second main portion of the second electrode; and

a second Bragg grating structure or 2-dimensional photonic crystal waveguide extending in the parallel direction, wherein the second Bragg grating structure or 2-dimensional photonic crystal waveguide is between the first electrode and the third main portion of the second electrode.

17 . The system as recited in claim 16 , further comprising:

an optical source, wherein respective first ends of each of the first and second Bragg grating structures or 2-dimensional photonic crystal waveguides are an optical input that is optically coupled to the optical source; and

an optical device, wherein respective second ends of each of the first and second Bragg grating structures or 2-dimensional photonic crystal waveguides are an optical output that is optically coupled to the optical device.

18 . The system as recited in claim 17 , further comprising:

an electric signal input module configured to generate electrical signals for modulation of an optical signal from the optical source so the optical device receives a modulated optical signal based on an electrical signal generated by the electrical signal input module; and

an electrical circuit electrically connecting the electrical signal input module to the first electrode, and electrically connecting the second electrode to an electrical return or ground, wherein the first and second electrodes are configured to modulate optical signals in the Bragg grating structures or 2-dimensional photonic crystal waveguides based on the electrical signals input thereto from the electric signal input module.

19 . The system as recited in claim 3 , further comprising:

an electrical transmission line with an electrical signal input electrically connected to a first end of the first electrode relative to the longitudinal axis, and an electrical signal output electrically connected to a second end of the first electrode opposite the first end relative to the longitudinal axis, wherein the first and second electrodes are configured to provide a true delay in an electrical signal from the electrical signal input to the electrical signal output, wherein the second electrode is electrically connected to an electrical return or ground.

20 . The system as recited in claim 4 , wherein the first and second electrodes are of a metallic material disposed on a planar surface of a semiconductor substrate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 26, 2024
From: FATHPOUR, SASAN; HAEFNER, JOSEPH
To: UNIVERSITY OF CENTRAL FLORIDA RESEARCH FOUNDATION, INC.
Reel/Frame 069679/0779 →
Continuity (1)
Related Publication 20260081335A1 · Mar 19, 2026
References Cited (13)
US 5150436A · Jaeger et al. · 1992 [cited by applicant]
US 11567353B2 · Kharel et al. · 2023 [cited by applicant]
CN 106646931A · 2017 [cited by examiner]
CN 120255184A · 2025 [cited by examiner]
CN 120539972A · 2025 [cited by examiner]
CN 120848048A · 2025 [cited by examiner]
WO WO2020181690A1 · 2020 [cited by examiner]
Manuel Ackermann et al. “Resonantly enhanced lumped-element O-band Mach—Zehnder modulator with an ultra-wide operating wavelength range”. In: Opt. Lett. 48.21 (Nov. 2023), pp. 5623-5626. DOI: 10.1364/ 0L .502324. URL: h… [cited by applicant]
Chunyu Deng et al. “Design and simulation of high modulation efficiency, low group velocity dispersion lithium niobate slow-wave electro-optic modulator based on a fishbone-like grating”. In: Optics Laser Technology 158… [cited by applicant]
Shu-Yin Ho and Wen-Jiao Liao. “A delay line based on synthesized coplanar waveguide”. In: 2012 International Conference on Microwave and Millimeter Wave Technology (ICMMT). vol. 1. 2012, pp. 1-4. DOI: 10.1109/ICMMT.2012… [cited by applicant]
Xingrui Huang et al. “Advanced Electrode Design for Low-Voltage High-Speed Thin-Film Lithium Niobate Modulators”. In: IEEE Photonics Journal 13.2 (2021), pp. 1-9. DOI: 10.1109/JPHOT.2021.3066159. [cited by applicant]
Sean P. Nelan et al. “Integrated Lithium Niobate Intensity Modulator on a Silicon Handle With Slow-Wave Electrodes”. In: IEEE Photonics Technology Letters 34.18 (2022), pp. 981-984. DOI: 10. 1109/LPT. 2022. 3197085. [cited by applicant]
A. Rosa et al. “Microwave index engineering for slow-wave coplanar waveguides”. In: Scientific Reports 8 (Apr. 2018), p. 1. DOI: 10.1038/s41598-018-24030-w. [cited by applicant]