NSF Center for Single-Entity Nanochemistry and Nanocrystal Design

Our Mission

The NSF Center for Single-Entity Nanochemistry and Nanocrystal Design (CSENND) is addressing one of the biggest challenges in nanocrystal chemistry – the inherent heterogeneity of nanocrystals – by creating the scientific toolkit and chemical knowledge to separate individual nanocrystal responses from bulk property measurements. Nanocrystals are a driver of innovation because they display properties distinct from their bulk form. For example, bulk gold appears a lustrous yellow, but gold nanocrystals can appear nearly any color depending on their specific size and shape. This structure-dependent property can be leveraged for technologies such as disease diagnostic tests and solar cells, for example.

However, the way in which nanocrystals are made introduces variations from one crystal to the next in the same sample, meaning that each one may have different properties. This heterogeneity provides ample opportunity to discover new nanocrystals with useful properties but also makes the discovery of the nanocrystals with exceptional properties incredibly challenging, similar to finding the needle in a haystack. This heterogeneity also makes accurate structure-property relationships difficult to obtain as most property measurements are based on the ensemble. Separating individual nanocrystal responses from the bulk through single-nanocrystal measurements provides accurate structure-property relationships that are essential to facilitating conceptual insights that accelerate nanocrystal design. Separating individual nanocrystal responses from the bulk can also reveal rare events, enhance reproducibility, lead to property enhancements, and promote sustainable nanochemistry. Thus, CSENND is creating the resources that make single-nanocrystal measurements high-throughput, information rich, reproducible, and accessible to a broad cross-section of researchers. For Phase 1 of CSENND, these efforts are being directed toward nanocrystals for catalysis and chemical sensing.

This research is supported by the NSF Centers for Chemical Innovation Program Grant #2221062 from the Division of Chemistry.

 

thong ke loto mien bac | đăng ký làm đại lý ku casino | số vietlott mega | big777 đẳng cấp game slots | ô zê | mgm grand casino detroit hotel | ĩp | hà lan senegal | casino trực tuyến ac | james bond casino royal | casino boni deutschland | napthenhanh | mari slots | kết quả xsmb 100 ngày | golden galaxy hotel & casino | bong888 com | hang 2 duc | casino in tokyo japan | full slots | hollywood casino las vegas | dong phym | jun88 casino | casino campuchia mộc bài | tải kubet casino | máy đánh bạc slot machine | nha trang casino | win real money slots | quay thử xsmn 168 | fortune house slot | nhacaiee88in | akay hau | soạn đánh nhau với cối xay gió | laptop lock slot | how to win on penny slots | tải zalo về điện thoại | tần suất loto | tải app safe thần quay | 7 vien ngoc rong 4 9 | doraemon nobita và cuộc chiến vũ trụ | slots casino no deposit bonus | ignition casino promo codes | dow zalo | raging rhino casino |