This $5.976 million project grant from the National Institutes of Health's National Institute of Child Health and Human Development will fund the development of an all-optical holographic brain interface capable of precisely and bidirectionally altering neural population activity across large volumes of brain tissue with high speed and resolution. Awarded to the University of California, Berkeley on September 1, 2022 for a three-year period ending August 31, 2025, the grant will support the...
This federal Project Grant award from the National Science Foundation's Engineering program (CFDA 47.041) provides $630,000 to the University of Chicago to develop a new technology called the Monolithic Adjustable Photostimulation (MAP) platform for high spatiotemporal photostimulation of the nervous system. The project aims to create minimally-invasive, optically-controlled neuromodulation devices using advanced silicon heterojunctions that can precisely stimulate neural circuits, with the goal...
This Project Grant award of $305,853 from the National Eye Institute (CFDA 93.867 Vision Research) supports the development of a novel laser technology called stretched-pulse-mode-locking (SPML) by Bluebird Photonics, Inc. The goal is to enable next-generation optical coherence tomography (OCT) instrumentation capable of high-speed, wide-field imaging of the human retina. Specific aims include implementing a bias-free Sagnac-loop amplitude modulator and developing a closed-loop locking mechanism...
This $162,486 federal Project Grant awarded on June 1, 2025 by the National Eye Institute (CFDA 93.867 - Vision Research) supports research to study stimulation of long-range cortical projections involved in visual-spatial behavior in non-human primates using a novel multimodal optoelectronic device. The key products and services to be delivered include: Development of a multimodal optoelectronic device with microLED and transparent microelectrodes to enable colocalized optogenetic stimulation...
The University of Minnesota was awarded a $3,972,414 Project Grant from the National Institute of Neurological Disorders and Stroke within the Department of Health and Human Services to develop an electro-optical multiphoton microscope. The microscope will leverage advances in electro-optical beam deflection to enable random-access multiphoton interrogation of neurons and synapses with sub-microsecond access times. This will allow neuroscientists to collect the simultaneous recordings needed...
This $950,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) to the University of California, Berkeley (UC Berkeley) supports the development of high-efficiency, high-throughput photonic-electronic hybrid processors. The key technical goals include: (1) creating scalable photonic circuits for massive parallel tensor computations using time-multiplexed data encoding, and (2) enabling CMOS-compatible, high-speed electro-optic modulators using...
This Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) provides $325,000 to the Massachusetts Institute of Technology (MIT) to develop 3D-integrated micro-photometer chips for studying functional neural dynamics in the brain. The project aims to overcome limitations of existing fluorescence detection probes by creating smaller, softer, and more spectrally-focused optoelectronic probes. This will enable minimally invasive, long-term stable, and...
This Project Grant award from the National Institute of Mental Health (NIMH) under the Mental Health Research Grants program (CFDA 93.242) provides $434,610 to the Florida Institute of Technology Inc. (Florida TECH) for the development of light-triggered molecular tools to manipulate neuronal connections and study brain function. The principal investigator, Dr. Nasri Nesnas, will collaborate with neuroscientists, including Dr. Attila Losonczy from Columbia University, to design and utilize these...
This National Science Foundation (NSF) Technology, Innovation, and Partnerships (CFDA 47.084) Phase I Small Business Innovation Research (SBIR) grant of $275,000 awarded to Lumoniq Inc. supports research and development of a nanoscale hybrid optical interconnect platform to revolutionize internal computer chip connections. The project aims to commercialize a new approach called Coupled Hybrid Plasmonics (CHP) that uses the interaction of light and metals to enable high-bandwidth, low-power,...
This Project Grant was awarded by the National Institutes of Health (NIH) Office of Research Infrastructure Programs (ORIP), under CFDA 93.351 - Research Infrastructure Programs. The $416,925 award to Objective Biotechnology, Inc., a minority-owned small business in Minneapolis, MN, supports the development of a miniaturized microscope system for wide-scale brain imaging in freely behaving mice. The project aims to engineer a highly sensitive "Mini-MScope" device that can perform...
A MEMS-BASED HIGH-THROUGHPUT PHOTOSTIMULATION DEVICE WITH COMMERCIAL BACKPLANE INTEGRATION - BOULDER NONLINEAR SYSTEMS (BNS) AND PROF. RIKKY MULLER AT UC-BERKELEY PROPOSE A TWO-PHASE EFFORT TO ADDRESS CURRENT SPEED LIMITATIONS IN HOLOGRAPHIC PHOTOSTIMULATION. SPECIFICALLY, THE PROPOSED INNOVATIONS AIM TO ACHIEVE STREAMING OF HIGH-RESOLUTION HOLOGRAMS AT UP TO 10,000 FRAMES PER SECOND (FPS) TO ENABLE CLOSED-LOOP OPTOGENETIC CONTROL. OPTICAL IMAGING AND PHOTOSTIMULATION HAVE EMERGED AS COMPLIMENTARY TOOLS THAT ALLOW NOT ONLY DIRECT IMAGING OF NEURONS AND THEIR ACTIVITY, BUT ALSO THE ABILITY TO DIRECTLY STIMULATE OR INHIBIT ACTIVITY IN LIVING BRAINS. WHEN PERFORMED THROUGH MULTIPHOTON MICROSCOPES EQUIPPED WITH PHASE-SHAPING SLMS, NEUROSCIENTISTS CAN NOW SIMULTANEOUSLY CONTROL USER-DEFINED POPULATIONS OF NEURONS DISTRIBUTED ACROSS DIFFERENT CORTICAL LAYERS IN AWAKE AND BEHAVING ANIMALS. THIS IS ACCOMPLISHED THROUGH DIGITAL HOLOGRAPHY, IN WHICH THE SLM PRODUCES A THREE-DIMENSIONAL LIGHT FIELD IN THE SAMPLE (I.E., BRAIN) WITH FOCI OF LIGHT TARGETED DIRECTLY TO NEURONS OF INTEREST. STIMULATION OF SPECIFICALLY TARGETED GROUPS OF NEURONS MORE ACCURATELY MIMICS NATURAL NEURAL DYNAMICS, IN WHICH NEURONAL ENSEMBLES ARE BELIEVED TO BE CRITICAL TO ENCODING INFORMATION. AS A RESULT, THIS HOLOGRAPHIC PHOTOSTIMULATION APPROACH IS YIELDING NOVEL INSIGHTS INTO THE NEURAL PROCESSES BEHIND PERCEPTION AND LEARNING THAT COULD NOT BE GAINED THROUGH ALTERNATIVE MEANS. INCREASINGLY, NEUROSCIENTISTS WISH TO USE THIS TECHNIQUE IN CLOSED-LOOP EXPERIMENTAL PROTOCOLS. IN THESE PROTOCOLS, THE NEURAL OR BEHAVIORAL ACTIVITY OF THE ANIMAL WOULD DICTATE THE HOLOGRAPHICALLY TARGETED NEURONS, WHICH IN TURN WOULD FURTHER ALTER THE ACTIVITY IN A REAL-TIME FEEDBACK LOOP. TO REALIZE THIS GOAL, NEUROSCIENTISTS REQUIRE THE COMPUTER-TO-HOLOGRAM PIPELINE TO BE ACCELERATED WELL BEYOND 1,000 FRAMES PER SECOND (FPS) (= 1 MS RESPONSE TIME). THE FASTEST COMMERCIAL SLMS, DEVELOPED BY BOULDER NONLINEAR SYSTEMS (BNS), CAN ACHIEVE UP TO 500 FPS IN HOLOGRAPHIC PHOTOSTIMULATION APPLICATIONS. ALTHOUGH THESE SYSTEMS USE A HIGH-SPEED DATA PIPELINE CAPABLE OF TRANSMITTING PHASE MASKS TO THE SLM AT SEVERAL KILOHERTZ, THESE SYSTEMS ARE LIMITED BY THE LIQUID CRYSTAL USED TO MODULATE THE PHASE OF THE LIGHT AND ARE THUS TOO SLOW FOR THE ENVISIONED CLOSED-LOOP PROTOCOLS. MEANWHILE, PISTON-TYPE MICROELECTROMECHANICAL SYSTEM (MEMS) MIRRORS, DEVELOPED BY PROF. RIKKY MULLER'S LAB AT UC-BERKELEY, ARE CAPABLE OF PIXELATED PHASE MODULATION AT SPEEDS ON THE ORDER OF 10 KHZ. TRANSLATION OF THIS APPROACH INTO THE HIGH-RESOLUTION MODULATORS REQUIRED FOR HOLOGRAPHY REQUIRES AN APPLICATION-SPECIFIC INTEGRATED CIRCUIT (ASIC) CAPABLE OF ADDRESSING MANY INDEPENDENT PIXELS WITH ANALOG VOLTAGES > 10 V AND A DATA PIPELINE TO TRANSFER DATA AT THE SPEEDS OF THE MEMS. IN THIS TWO-PHASE EFFORT, BNS AND PROF. RIKKY MULLER AT UC-BERKELEY WILL REMOVE THESE CRITICAL BARRIERS BY USING THE COMMERCIAL BNS SLM BACKPLANES AS THE MEMS ASIC AND USING THE BNS DRIVE ELECTRONICS TO ACHIEVE COMPUTER-TO-HOLOGRAM RATES UP TO 10 KHZ. IN PHASE I, WE WILL RIGOROUSLY CHARACTERIZE THE COMPATIBILITY OF THE MULLER LABS' MEMS PIXELS WITH THE BNS BACKPLANE AND DRIVE SCHEME USING A 6464 RESOLUTION MEMS ARRAY DRIVEN BY A BNS 768768 BACKPLANE ASSEMBLED TOGETHER ON A HOST PRINTED CIRCUIT BOARD (PCB). THIS ARCHITECTURE ENABLES THOROUGH AND INDEPENDENT CHARACTERIZATION OF MEMS AND BACKPLANE BEHAVIORS WHILE BEING SUFFICIENT TO DEMONSTRATE THE HIGH-SPEED HOLOGRAPHY USED IN PHOTOSTIMULATION PROTOCOLS. THIS PHASE I PROOF-OF-CONCEPT MEMS SLM WILL HAVE A MAXIMUM SPEED OF 2.5 KHZ, WHICH IS ALREADY A 5 IMPROVEMENT OVER THE STATE-OF-THE-ART. IN PHASE II, WE WILL DIRECTLY INTEGRATE THE MEMS ARRAY ONTO THE BNS BACKPLANE, TARGETING UP TO A 512512 MEMS SLM CAPABLE OF UP TO 10 KHZ FRAME RATES, AND DEMONSTRATE IN VIVO PHOTOSTIMULATION AT KHZ SPEEDS. IN ADDITION, THIS MEMS SLM HAS STRONG APPLICATIONS IN LASER COMMUNICATIONS, ATMOSPHERIC SENSING, A