Project Grant 2518337
- The National Science Foundation (NSF) awarded a $171,015 Early-Concept Grants for Exploratory Research (EAGER) project grant to Texas Tech University System under the NSF Engineering (CFDA 47.041) program. The project aims to advance the field of magnetic soft robotics by demonstrating a proof-of-concept mechanism for independently actuating multiple small-scale soft robots using a single external magnetic field. The research will focus on developing a modular magnetic actuation mechanism that...
- This National Science Foundation Project Grant of $258,554 supports research at Louisiana State University to develop novel hybrid rigid-soft modular robots. The funding is provided through the NSF's Engineering (47.041) program to advance the integration of soft and rigid robotic elements. Specifically, the award will further the state-of-the-art in soft robotics through the creation of physical hardware designs combining stiff and soft components. Researchers will pursue two thrusts: 1)...
- This National Science Foundation (NSF) CAREER Program award, under the Engineering program (CFDA 47.041), provides $622,769 in funding to Vanderbilt University from June 1, 2025 to May 31, 2030. The project supports research on developing miniature soft robots with integrated magnetically controlled microfluidics to enable liquid manipulation and multi-modal locomotion in confined spaces. The objective is to create soft robots that can navigate complex terrains and perform targeted procedures...
- This National Science Foundation (NSF) Engineering program (CFDA 47.041) project grant award of $731,541 to the Regents of the University of California at Riverside (UC Riverside) will create a new class of microfabricated mesoscale surgical robots with shape-memory alloy (SMA) actuators, integrated sensors, and advanced control algorithms. The goal is to develop soft robots capable of safely navigating within the human body and performing dexterous manipulation of soft tissue for minimally...
- This $300,000 Project Grant awarded by the National Science Foundation (NSF) Engineering program (CFDA 47.041) supports research at the University of Texas at Austin (UT Austin) to develop new modeling and control methods for deformable (continuum) systems such as soft robots. The research aims to enable advanced theory and algorithms for modeling and control of deformable systems, with applications in areas like manufacturing, healthcare, search and rescue, and agriculture. Key goals include...
- This Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) provides $905,626 to support research and development of inflatable, shape-morphing robots. The research aims to develop a new class of untethered, soft robots that can be compactly stored and safely deployed in a wide range of environments. Key innovations include high-pressure fabric robot bodies that serve as distributed energy storage, compact high-flow embedded valves for fast...
- This federal Project Grant award from the National Science Foundation (NSF) under the Engineering program (CFDA 47.041) provides $342,325 to Southern Methodist University (SMU) to conduct collaborative research on the mechanics of bacterial flagella and their potential application to nanorobotic propulsion. The key objectives of this 3-year research project are to investigate how the stiffness of bacterial flagella influences swimming behaviors and turning maneuvers, and to leverage these...
- This $454,020 Project Grant awarded by the National Science Foundation (NSF) Engineering program (CFDA 47.041) will support collaborative research at the University of Michigan to develop soft materials with embedded sensors, circuits, and actuators enabling a new class of intelligent soft robots. The goal is to create a soft robotic manipulator that can autonomously recognize and sort objects by their physical characteristics using only these advanced material components, without requiring...
- This Project Grant award from the National Science Foundation's (NSF) Computer and Information Science and Engineering (CISE) Federal Grant Program will support the development of nimble, smart microrobots no larger than a hair's width. The goal is to create magneto-electric microrobots capable of carrying out medical procedures deep within the human body, with potential applications in minimally invasive medicine, drug delivery, and biological monitoring. The $515,591 award to the University of...
- This $296,890 Project Grant award from the National Science Foundation (NSF) Engineering program (CFDA 47.041) will support the development of a sub-millimeter scale "gel-bot" robot with sensing and movement capabilities inspired by amoebas. The project aims to create a soft composite robot that can follow biological and chemical traces in its environment by extending and contracting its body, with applications in minimally invasive medical diagnostics and confined space inspection....
COLLABORATIVE RESEARCH: DEFORMATION-ENHANCED DYNAMICS AND CONTROL OF MICROSCALE MODULAR SOFT ROBOTS -SOFT ROBOTS, CONSTRUCTED FROM FLEXIBLE AND DEFORMABLE MATERIALS, ARE OPENING NEW FRONTIERS IN ROBOTICS BY ENABLING SAFE AND ADAPTABLE OPERATION IN DELICATE AND COMPLEX ENVIRONMENTS. THIS PROJECT FOCUSES ON DEVELOPING MICROSCALE SOFT ROBOTS INSPIRED BY THE SHAPES AND MOTIONS OF BACTERIA. THESE ROBOTS ARE SPECIFICALLY DESIGNED TO NAVIGATE BIOLOGICAL FLUIDS THAT ARE HIGHLY VISCOUS OR ELASTIC. THE MINIATURE ROBOTS WILL HAVE THE ABILITY TO CHANGE SHAPE, ADAPT TO TIGHT OR IRREGULAR SPACES, AND MOVE WITH PRECISION THROUGH EXTERNAL MAGNETIC AND LIGHT-BASED CONTROL. UNLIKE CONVENTIONAL RIGID ROBOTS, THESE SOFT ROBOTS CAN BEND, TWIST, ROLL, AND SWIM WITH EASE, ALLOWING THEM TO ACCESS REGIONS THAT ARE OTHERWISE UNREACHABLE. THIS CAPABILITY MAKES THEM ESPECIALLY PROMISING FOR MEDICAL APPLICATIONS, INCLUDING TARGETED DRUG DELIVERY AND MINIMALLY INVASIVE PROCEDURES IN ANATOMICAL AREAS SUCH AS THE EAR, NOSE, AND THROAT. IN ADDITION TO ADVANCING ROBOTIC TECHNOLOGY, THE PROJECT INCLUDES A STRONG EDUCATIONAL AND OUTREACH COMPONENT. AT SOUTHERN METHODIST UNIVERSITY AND THE UNIVERSITY OF UTAH, UNDERGRADUATE AND GRADUATE STUDENTS WILL PARTICIPATE DIRECTLY IN RESEARCH ACTIVITIES, GAINING VALUABLE EXPERIENCE IN ROBOTICS, MATERIALS SCIENCE, AND BIOMEDICAL ENGINEERING. THROUGH THESE EFFORTS, THE PROJECT AIMS NOT ONLY TO DEVELOP TRANSFORMATIVE BIOMEDICAL TOOLS BUT ALSO TO CULTIVATE A SKILLED FUTURE WORKFORCE IN SCIENCE AND ENGINEERING. TECHNICALLY, THE RESEARCH INVOLVES THE DESIGN, FABRICATION, MODELING, AND CONTROL OF ROD-SHAPED SOFT ROBOTS BUILT FROM ADAPTIVE POLYMER SCAFFOLDS. THESE SCAFFOLDS CONTAIN PARAMAGNETIC DISKS FOR MAGNETIC ACTUATION, POLYDIACETYLENE VESICLES FOR THERMAL SENSING, AND GOLD AND SILVER NANOPARTICLES FOR LIGHT-RESPONSIVE SHAPE MODULATION. THE ROBOTS WILL BE ACTUATED USING DIFFERENT MAGNETIC FIELD CONFIGURATIONS TO PRODUCE A VARIETY OF LOCOMOTION MODES, SUCH AS SWIMMING, CRAWLING, WIGGLING, AND SLITHERING, BOTH ON SURFACES AND WITHIN THREE-DIMENSIONAL ENVIRONMENTS. TO BETTER UNDERSTAND AND OPTIMIZE THESE BEHAVIORS, THE PROJECT WILL DEVELOP AND VALIDATE COMPUTATIONAL MODELS BASED ON KIRCHHOFF ROD THEORY AND REDUCED-ORDER REPRESENTATIONS. THESE MODELS WILL INCORPORATE FACTORS SUCH AS ENVIRONMENTAL FORCES, MAGNETIC INTERACTIONS, AND SPATIALLY CONTROLLED CHANGES IN STIFFNESS. EXPERIMENTS WILL BE CONDUCTED IN SYNTHETIC BIOLOGICAL FLUIDS AND BIOMIMETIC ENVIRONMENTS, INCLUDING MUCUS ANALOGS AND TISSUE-LIKE GELS, TO SIMULATE REAL-WORLD BIOMEDICAL CONDITIONS. THE ROBOTS WILL ALSO BE CAPABLE OF MODULAR ASSEMBLY AND DISASSEMBLY, ALLOWING THEM TO WORK TOGETHER IN SWARMS FOR MORE EFFECTIVE MANIPULATION AND ENHANCED ADAPTABILITY. BY INTEGRATING COMPUTATIONAL MODELING, MATERIALS SCIENCE, AND CONTROL METHODOLOGIES, THIS RESEARCH WILL ADVANCE THE STATE OF THE ART IN MICROSCALE SOFT ROBOTICS AND OPEN NEW POSSIBILITIES FOR BIOMEDICAL APPLICATIONS AND OTHER AREAS THAT DEMAND HIGHLY ADAPTIVE, MINIMALLY INVASIVE TECHNOLOGIES. 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 | $25.0k | 7/31/25 |