Project Grant 2320265
- This $500,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) will support research at The Washington University in St. Louis to develop a heterogeneous photonic integration platform. The key technical objectives are to: Enable the van der Waals integration of dissimilar functional nanomembranes, including barium titanate, gallium nitride, and cobalt ferrite, onto silicon and silicon nitride photonic circuits. This will allow the creation of...
- This $380,000 Project Grant award from the National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems under CFDA Program 47.041 (Engineering) will fund the development of new types of on-chip "topological photodetectors" that can detect and differentiate between different modes and properties of light, such as its phase, polarization, and orbital angular momentum. These novel photodetectors, based on emerging quantum materials like Weyl semimetals,...
- This National Science Foundation (NSF) Major Research Instrumentation (MRI) grant, awarded under the Engineering program (CFDA 47.041), provides $348,935 to the University of Oklahoma for the acquisition and implementation of a state-of-the-art superconducting nanowire single-photon detector (SNSPD) system. This cutting-edge technology enables the detection of extremely faint light signals, including individual photons, with high efficiency, timing precision, and low noise. The SNSPD system will...
- Federal Grant Award Summary The National Science Foundation's Engineering program (CFDA 47.041) awarded Harvard College a $550,000 CAREER grant on June 15, 2026, to develop integrated-photonics spatial light modulators for quantum control and advanced imaging applications. The primary deliverable is an innovative photonic platform that combines a solid-state gain laser array, high-speed electro-optic modulators, a two-dimensional beam-emitter array, and flat metasurface lenses to generate and...
- This National Science Foundation (NSF) Integrative Activities program project grant award provides $300,000 to the University of Nebraska-Lincoln (UNL) to conduct research on integrated photonic platforms leveraging solution-processed wide-bandgap cesium lead halide perovskites. The 2-year project, starting January 1, 2025, aims to advance the understanding of perovskite crystal growth and patterning synthesis, as well as develop cost-effective integrated photonic devices that can enable...
- The National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems awarded a $250,000 EAGER (Early-concept Grants for Exploratory Research) Project Grant to the University of Illinois - Urbana to develop a blueprint for a manufacturing process to assemble ultrafast quantum photonic devices using nanoparticle-based quantum emitters. The key products and services to be delivered under this 2-year grant include: Producing an in-situ monitored synthesis process for...
- Photonect Interconnect Solutions Inc. received a $275,000 Project Grant award from the National Science Foundation under the NSF Technology, Innovation, and Partnerships federal grant program (CFDA 47.084) to develop a chip technology for cheaper and easier photonic device manufacturing. The company will focus on a new fusion splicing machine and novel silicon dioxide mode converter that enables faster, more accurate, and lower cost fiber placement on chips compared to existing technologies....
- This Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) provides $500,000.00 over a 4-year period to Purdue University to develop a novel hybrid thin film platform with unique optical properties for photonic integrated circuits (PICs). The research aims to advance understanding of electro-optical and magneto-optical coupling effects in complex nanoscale hybrid metamaterials, and demonstrate key building blocks for future large-scale PICs including...
- This $305,000 Small Business Innovation Research (SBIR) Phase I project, awarded by the National Science Foundation (NSF) through its Technology, Innovation, and Partnerships (CFDA 47.084) program, is developing innovative metasurface optical waveguiding devices (MOWGs) that control light on a sub-wavelength level. The goal is to overcome the limitations of traditional optical systems, such as weight, size, scalability, and cost, by replacing conventional optical components like lenses and...
- This Small Business Innovation Research (SBIR) Phase I Project Grant, awarded by the National Science Foundation (NSF) under the NSF Technology, Innovation, and Partnerships (CFDA 47.084) program, focuses on the development of a nonlinear eigenmode expansion simulation tool for modeling nonlinear optical interactions in complex waveguide structures. The $305,000 award to Emode Photonix LLC, a woman-owned small business in Boulder, Colorado, aims to create a new computer program that will enhance...
EQUIPMENT: MRI: TRACK #1 ACQUISITION OF PHOTONIC WIREBONDING TOOL FOR QUANTUM AND NANOPHOTONICS -PHOTONS, PARTICLES OF LIGHT, CAN TRAVEL ACROSS LONG DISTANCES WITH VERY HIGH EFFICIENCY, ESPECIALLY WHEN PROPAGATING IN VERY LOW LOSS FIBER-OPTICAL CABLES. THEREFORE, PHOTONS ARE USED AS INFORMATION CARRIERS OF CHOICE FOR OPTICAL COMMUNICATION TECHNOLOGY THAT FORMS THE BACKBONE OF THE INTERNET. INTEGRATED PHOTONIC CHIPS - INTEGRATED PHOTONICS FOR SHORT - CONSISTING OF MANY MICRON-SCALE OPTICAL DEVICES, HAVE EMERGED AS AN ESSENTIAL TECHNOLOGY REQUIRED TO ENCODE INFORMATION IN A PHOTON?S COLOR, POLARIZATION, SHAPE, AND POSITION. BEYOND OPTICAL COMMUNICATIONS, INTEGRATED PHOTONICS HAS ENABLED A WIDE RANGE OF APPLICATIONS WITH SIGNIFICANT SOCIETAL IMPACT, INCLUDING ENVIRONMENTAL MONITORING, BIO-MEDICAL IMAGING, MACHINE VISION, AND HIGH-PERFORMANCE COMPUTING. THESE APPLICATIONS CRUCIALLY RELY ON THE ABILITY TO EFFICIENTLY INTERFACE ?MICRO-WORLD? OF INTEGRATED PHOTONIC CHIPS WITH ?MACRO-WORLD? OF OPTICAL FIBERS. IN THE LABORATORY SETTING, THIS IS ACHIEVED USING BULKY, EXPENSIVE, AND HIGH-PRECISION POSITIONERS, WHICH RENDERS THE SYSTEM CHALLENGING TO USE IN REAL-WORLD APPLICATIONS. PHOTONIC WIRE BONDING (PWB), THE PROCESS OF PERMANENTLY ATTACHING AN OPTICAL FIBER TO A PHOTONIC CHIP, IS IDEALLY SUITED TO OVERCOME THIS LIMITATION AND IMPROVE THE PERFORMANCE AND USABILITY OF THE INTEGRATED PHOTONICS. FURTHERMORE, IT CAN ALSO MAKE THESE SYSTEMS ACCESSIBLE TO MANY UNDER-RESOURCED COMMUNITIES (E.G. SMALL COLLEGES, HIGH SCHOOLS) WHO MAY NOT HAVE ACCESS TO STATE OF THE ART LABORATORY EQUIPMENT. THIS MAJOR RESEARCH INSTRUMENTATION (MRI) AWARD IS SUPPORTING THE ACQUISITION OF A PWB SYSTEM BY VANGUARD AUTOMATION. THE TOOL WILL BE PLACED IN A SHARED CLEAN ROOM FACILITY - CENTER FOR NANOSCALE SYSTEMS AT HARVARD, MEMBER OF NNCI NETWORK - WHERE IT WILL BE AVAILABLE TO MANY ACADEMIC AND INDUSTRIAL USERS. THEREFORE, THE TOOL WILL ENABLE MANY SCIENTIFIC BREAKTHROUGHS, STIMULATE TECHNOLOGICAL ADVANCEMENTS AND ENTREPRENEURSHIP, AND HELP TRAIN A DIVERSE AND PHOTONIC-SAVVY WORKFORCE. MODERN CHIP-SCALE PHOTONIC SYSTEMS CONSIST OF MANY OPTICAL DEVICES, INCLUDING WAVEGUIDES, RESONATORS, MODULATORS, SWITCHES, LASERS AND DETECTORS, REALIZED IN A VARIETY OF PHOTONIC MATERIALS AND HAS ENABLED APPLICATIONS RANGING FROM OPTICAL COMMUNICATIONS AND COMPUTATION ON ONE END, TO SENSING AND PRECISION MEASUREMENT ON THE OTHER. THE OUTSTANDING CHALLENGE FOR INTEGRATED PHOTONICS IS THAT OF EFFICIENTLY GETTING LIGHT ON- AND OFF-CHIP. DUE TO THE LARGE OPTICAL MODE MISMATCH BETWEEN SUB-MICRON SCALE ON-CHIP OPTICAL WAVEGUIDES AND COMMERCIALLY AVAILABLE OPTICAL FIBERS, FEATURING OPTICAL MODE DIAMETERS EXCEEDING TEN MICRONS, MUCH OF THE LIGHT IS LOST WHEN LIGHT PASSES FROM THE WAVEGUIDE TO THE FIBER. THIS IS PARTICULARLY TRUE FOR APPLICATIONS THAT REQUIRE LOW TEMPERATURE OPERATION (E.G. INSIDE CRYOSTAT OR DILUTION REFRIGERATOR), OPERATION IN FLUIDS (E.G. IN SENSORS), SCALABILITY (E.G. 10S OR 100S DEVICES TO BE CONNECTED AT THE SAME TIME), OR ROBUSTNESS TO VIBRATIONS. RECENTLY, PHOTONIC WIRE BONDING, AN OPTICAL EQUIVALENT TO ELECTRICAL WIRE BONDING UBIQUITOUS IN ELECTRICAL CIRCUITS, HAS EMERGED AS A PROMISING TECHNIQUE TO CREATE EFFICIENT AND PERMANENT CONNECTIONS BETWEEN PHOTONIC DEVICES ON DIFFERENT PLATFORMS, OR WITH FIBERS OR LASERS. IN THIS APPROACH, 3-D POLYMER WAVEGUIDES ARE FABRICATED IN SITU TO BRIDGE THE GAP BETWEEN PHOTONIC CIRCUITS LOCATED ON DIFFERENT CHIPS, OR BETWEEN THE CHIP AND FIBER OR LASER. THIS TECHNIQUE NOT ONLY ENABLES SCALABLE, HIGHLY EFFICIENT, AND LOW LOSS INTERFACE BETWEEN OPTICAL CHIPS AND OPTICAL FIBERS, BUT ALSO ALLOWS FOR THE REALIZATION OF COMPACT HYBRID DEVICES THAT COMBINE DIFFERENT MATERIALS. THE PWB TOOL WILL FACILITATE SUCCESSFUL COMPLETION OF A LARGE NUMBER OF ONGOING RESEARCH PROGRAMS FOCUSED ON DEVELOPMENT OF NEW TYPES OF CHIP-SCALE LASERS (INCLUDING PULSED ONES), FREQUENCY COMBS AND SINGLE-PHOTON SOURCES, FOR EXAMPLE, AND THEIR APPLICATION IN MICROWAVE PHOTONICS, OPTICAL COMMUNICATION AND COMPUTING, PRECISION MEASUREMENTS OF TIME AND DISTANCE, ENVIRONMENTAL MONITORING, QUANTUM COMMUNICATION AND COMPUTATION. THE TOOL WILL ALSO ENABLE NEW OPPORTUNITIES BY THE ABILITY TO PERFORM LONG TERM, STABLE MEASUREMENTS. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $0 | 7/3/25 | ||
| Not listed | $999.4k | 8/17/23 |