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        "event_title":"AmeriCorps NCCC: Jump Start Your Career as a Team Leader",
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        "combined_title":"AmeriCorps NCCC: Jump Start Your Career as a Team Leader",
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        "event_type":"Careers \/ Jobs",
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        "description":"What is AmeriCorps NCCC?AmeriCorps NCCC is one program option within AmeriCorps, which is the federal agencyfor national service and volunteerism. AmeriCorps NCCC\u00a0programs are in-person, full-time, and don\u2019t have positions within a particular location. Our members serve on a team of 8-12 individuals while traveling across the country to support a variety of community needs with all expenses paid.What will this webinar cover?Being an AmeriCorps NCCC team leader is the ultimate supervisory experience that will put you on a path to career success. Join us to learn more about this unique service opportunity that will include information about the position role, program requirements, benefits, and helpful tips for the application process. A panel of AmeriCorps NCCC staff will be available to answer your questions and help you decide if the team leader role is a good fit for you.What Team Leader positions are open?To see the listing of all open positions in AmeriCorps NCCC, including Team Leaders, visit the MyAmeriCorps application portal.\u00a0",
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        "datetime_modified":"20250410T115036",
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        "date_start":"2025-04-24",
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        "event_title":"Designing energy-harvesting materials via the vapor phase: From water splitting silicon nanowires to solar absorbing hybrid perovskites",
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        "combined_title":"Designing energy-harvesting materials via the vapor phase: From water splitting silicon nanowires to solar absorbing hybrid perovskites: James Cahoon (University of North Carolina)",
        "event_subtitle":"James Cahoon (University of North Carolina)",
        "event_type":"Workshop \/ Seminar",
        "event_type_id":"21",
        "description":"The vapor-phase provides a unique capacity to encode precise composition and morphology in semiconductor materials and interfaces for energy-harvesting functionality. Here, we highlight recent work on the vapor-phase synthetic control of Si nanowires, photoelectrochemical interfaces, and hybrid perovskite materials. Together, these processes provide platforms to design chemically encoded, nanostructured systems for applications ranging from solar water splitting to photovoltaic solar cells. First, we show how abrupt transitions between p-type, intrinsic, and n-type silicon allow nanowire p-i-n superlattices to be synthesized that behave as multijunction photovoltaic devices with extraordinarily large photovoltages. Using spatio-selective photoelectrochemical deposition of hydrogen and oxygen-evolving co-catalysts, water splitting particle suspensions are demonstrated. Second, we show how planar silicon interfaces can be functionalized with nanoscale oxide and graphene layers, facilitating the integration of molecular catalysts for solar-driven CO2 reduction. Finally, we demonstrate the first metal organic chemical vapor deposition (MOCVD) growth of methylammonium lead iodide (MAPbI3). Use of separate vapor precursors for the lead, organic, and halide components allows the tuning of reaction conditions to grow the material directly with high purity. Overall, the projects highlight the precise and tunable control of material composition, morphology, and functionality provided by the vapor phase.",
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