Project Grant 2339233
- This $3,000,000 Project Grant awarded by the National Science Foundation (NSF) Engineering Program (CFDA 47.041) supports research to develop a novel lamination approach for halide perovskite semiconductors that enables new device architectures and material combinations for applications like solar cells, LEDs, and other optoelectronic devices. The research aims to understand, model, and control the process-structure-property relationships during halide perovskite semiconductor manufacturing...
- This $425,000 federal Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) aims to advance the state-of-the-art in halide perovskite solar cell technology. The primary research goals are to: 1) determine the combined effects of environmental stressors like humidity, oxygen, and temperature on perovskite stability; 2) quantify the stability of hole transport material/halide perovskite interfaces using novel conducting polymers; and 3) demonstrate...
- This $1,000,000 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) supports an interdisciplinary research project to study the chemical and mechanical interactions in halide perovskite solar cells (PSCs) to enable the recovery, reuse, and recycling of the device components. The primary objective is to develop recyclable PSCs with minimal environmental impact and low production costs. The project team, led by the Georgia TECH Research Corp, will...
- This $274,999 Project Grant award from the National Science Foundation (NSF) Technology, Innovation, and Partnerships (TIP) program (CFDA 47.084) supports the development of strain-relief interconnection and encapsulation technologies for perovskite/silicon tandem photovoltaic (PV) modules at Beyond Silicon Inc., a for-profit solar technology company based in Chandler, Arizona. The project aims to increase the competitiveness of U.S. PV manufacturing by advancing perovskite/silicon tandem PV...
- Arizona State University was awarded a $196,836 Project Grant from the National Science Foundation's Engineering (CFDA 47.041) program to conduct fundamental research elucidating how light-induced excitation controls the mechanical behavior of photovoltaic semiconductors. Under this May 1, 2023 to October 31, 2023 award, the University will use multiscale modeling and experimental techniques to characterize the influence of photoinduced electron-hole excitation on deformation mechanisms like...
- This $424,851 Project Grant award from the National Science Foundation's (NSF) Engineering program (CFDA 47.041) to Portland State University (PSU) aims to identify sustainable design principles and strategies for emerging photovoltaic (EPV) technologies to make them more environmentally and economically viable for the solar energy market. The key objectives are to: 1) develop sustainable EOL (end-of-life) management approaches for EPVs; 2) analyze the environmental impacts and costs of EPV...
- The National Science Foundation (NSF) Division of Materials Research awarded a $164,671 Project Grant to Arizona State University to develop and evaluate a new class of lead-free perovskite halide materials for optoelectronic applications under the Mathematical and Physical Sciences (CFDA 47.049) program. This collaborative research between the University of Maine and the University of Alabama aims to computationally design, synthesize, characterize, and assess the stability of...
- The National Science Foundation (NSF) awarded a $124,910 Project Grant to Arizona State University (ASU) on January 1, 2024 under the Engineering program (CFDA 47.041). The grant supports research to improve the efficiency and affordability of thin-film photovoltaic devices based on earth-abundant low-dimensional chalcogenide materials. Key activities include: 1) understanding the anisotropic growth mechanisms and carrier transport properties of the chalcogenide absorbers, 2) tailoring the...
- The National Science Foundation (NSF) Directorate for Mathematical and Physical Sciences awarded a 2-year, $238,316 Project Grant to Wesleyan University to develop new non-contact terahertz characterization techniques to study charge carrier transport in phase-stable hybrid perovskite materials. The project, titled "LEAPS-MPS: TIME- AND DEPTH-RESOLVED CHARGE CARRIER TRANSPORT IN PHASE STABLE HYBRID PEROVSKITES", aims to increase the probing window from picosecond to millisecond...
- The National Science Foundation (NSF) Division of Electrical, Communications and Cyber Systems awarded a $105,194 EAGER (EArly-concept Grants for Exploratory Research) grant to the University of Pittsburgh to develop a novel semiconductor-metal-semiconductor (S-M-S) multilayer film as an interconnect for perovskite-silicon tandem solar cells. The project aims to design an interconnect with high electrical conductivity and optical transparency to enhance the performance of these tandem solar...
CAREER: DESIGN OF THERMOMECHANICALLY ROBUST METAL HALIDE PEROVSKITE PHOTOVOLTAIC DEVICES -ONE SCIENTIFIC QUESTION THAT IS KEY TO ALL ENGINEERING RESEARCH IS ?WHAT ARE THE KEY CRITERIA TO MAKE A LONG-LASTING MATERIAL, DEVICE, AND SYSTEM?? THE ANSWER TO THIS QUESTION CAN OFTEN BE BETTER UNDERSTOOD THROUGH THE LENS OF MECHANICAL RELIABILITY. WHETHER STUDYING SEMICONDUCTOR MICROELECTRONICS, RENEWABLE ENERGY HARVESTING AND STORAGE TECHNOLOGIES, OTHER OPTOELECTRONIC DEVICES SUCH AS LIGHT EMITTING DIODES (LEDS), DETECTORS, LASERS, OR EVEN BIODEVICES, RELIABILITY IS OFTEN GOVERNED BY THE INTERACTION OF ENVIRONMENTAL AND MECHANICAL STRESS PARAMETERS. METAL HALIDE PEROVSKITES (MHPS) ARE THE PREMIER NEXT-GENERATION PHOTOVOLTAIC (PV) TECHNOLOGY BASED ON LOW-COST AND HIGH-PERFORMANCE APPLICATIONS IN PV, LEDS, AND PHOTO/X-RAY DETECTORS. THE PROBLEM IS THAT MHPS HAVE BEEN IDENTIFIED AS AMONG THE MOST MECHANICALLY FRAGILE OF ANY OPTOELECTRONIC DEVICE, BUT THE MECHANICAL PROPERTIES OF MHPS HAVE BEEN LARGELY OVERLOOKED. THE INTEGRATED RESEARCH AND EDUCATIONAL RESOURCES EXPLORE THE LINK BETWEEN MECHANICAL PROPERTIES AND OPERATIONAL STABILITY IN PV DEVICES TO ENABLE MANUFACTURABILITY OF MHP TECHNOLOGY THROUGH INVOLVEMENT OF UNDERSERVED POPULATIONS. THE ?PEROVSKITE SOLAR CELL 101? OUTREACH EFFORT WILL RECRUIT WOMEN AND INDIGENOUS STUDENTS FROM LOCAL COMMUNITY COLLEGES AND TRIBAL SCHOOLS. THE ADDITION OF FREE ONLINE RESOURCES ON PVEDUCATION, THE WORLD?S LARGEST ONLINE AND FREE SEMICONDUCTOR TEXTBOOK, IS AIMED AT REACHING A WORLDWIDE AUDIENCE. A GRADUATE PEER MENTORING PROGRAM IS DESIGNED TO WELCOME INDIVIDUALS OF ALL BACKGROUNDS, PARTICULARLY FIRST-GENERATION STUDENTS WHO MAY HAVE LESS FAMILIARITY WITH PHD PROGRAM EXPECTATIONS. A (CIS/TRANS) FEMALE EMPOWERMENT PROGRAM IS FOCUSED ON CREATING A RESEARCH EXCHANGE PROGRAM AND EDUCATIONAL RESOURCES TO CREATE WOMEN LEADERS. THE KEY OUTCOME THAT WILL BE PURSUED IS THE DEVELOPMENT OF A CULTURE OF INCLUSION THROUGH INCREASING SUPPORT FOR INDIGENOUS AND WOMEN AS WELL AS THEIR ACCESS TO RESOURCES AND OPPORTUNITIES IN THE SOLAR AND SEMICONDUCTOR INDUSTRIES. THIS CULTURE OF INCLUSION IS DEFINED AS THE PURSUIT OF VALUES PROMOTING A SENSE OF BELONGING FOR ALL INDIVIDUALS, RECRUITING PEOPLE FROM A DIVERSITY OF CULTURAL BACKGROUNDS, AND ADVANCING INCLUSION INITIATIVES TOWARD SYSTEMIC AND INSTITUTIONAL CHANGE. ACCORDING TO THE INTERNATIONAL ENERGY AGENCY, THE COMMON FAILURES OBSERVED IN ALL PV MODULES ARE DELAMINATION, ADHESION LOSS, JUNCTION BOX FAILURE, AND FRAME BREAKAGE. TO THIS END, THE THERMOMECHANICAL MEASUREMENTS LEVERAGED IN THIS WORK WERE SELECTED BECAUSE THEY DIRECTLY MEASURE DELAMINATION AND ADHESION LOSS. THERE IS A LACK OF UNDERSTANDING ON THE RELATIONSHIP OF MECHANICAL PROPERTIES WITH DEGRADATION AND HOW THESE PROPERTIES EVOLVE DURING OPERATION. THE CENTRAL RESEARCH OBJECTIVE IS TO ANSWER THE FOLLOWING QUESTION: ?HOW CAN MHPS BE DESIGNED FOR THERMOMECHANICAL RELIABILITY THAT ADDRESS THE KEY FAILURE MECHANISMS OBSERVED IN THE LAB AND THE FIELD?? THE RESEARCH OBJECTIVE WILL BE STUDIED THROUGH THE FOLLOWING SCIENTIFIC QUESTIONS: (1) WHAT ARE THE PREDOMINANT THERMOMECHANICAL-BASED FAILURE MECHANISMS IN THE LAB? (2) HOW CAN FAILURES IN THE FIELD BE PREDICTED BY EXPERIMENTS IN THE LAB? (3) HOW CAN MORE STABLE AND RELIABLE MHP DEVICES BE PRODUCED BASED ON DESIGN CRITERIA DEVELOPED THROUGH THE RESEARCH? THE CENTRAL HYPOTHESIS IS THAT IN SITU LAB TEST DATA (THROUGH FRACTURE, FILM STRESS, AND IONIC MEASUREMENTS) ALONG WITH FINITE ELEMENT MODELING COMBINED WITH ANALYSIS OF FIELD FAILURES CAN ELUCIDATE THE FAILURE MECHANISMS AND DETERMINE CRITERIA FOR ROBUST MHP DEVICE AND MODULE DESIGNS. WHEN COMBINED WITH THE ACCELERATED AGING CONDITIONS ENABLED THROUGH CONTROL OF HUMIDITY, HEAT, TEMPERATURE, ILLUMINATION, AND BIAS DURING TESTING, THESE LAB MEASUREMENTS THAT PROBE THE SYNERGISTIC EFFECT OF ENVIRONMENTAL AND MECHANICAL STRESSORS AIM TO ENABLE THE DEVELOPMENT OF ACCELERATED TEST SEQUENCES THAT VERIFY AND VALIDATE MHP PV DURABILITY. 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 | $20.0k | 3/14/26 | ||
| Not listed | $118.8k | 8/29/24 | ||
| Not listed | $431.2k | 5/28/24 |