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Engineering Molecular Recognition with Bio-mimetic Polymers on Single Walled Carbon Nanotubes
Published on: January 10, 2017
Quantum Defects Engineered in Chirality Pure Single-Wall Carbon Nanotubes for Enabling Ratiometric Sensing of Insulin
Ali A Alizadehmojarad1, Hohyung Kang1, Gabriel Sánchez-Velázquez1
1Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, United States.
Abstract:
The Corona Phase Molecular Recognition (CoPhMoRe) method employs fluorescent semiconducting single-wall carbon nanotubes (SWCNTs) wrapped with heteropolymers composed of hydrophobic and hydrophilic groups, thereby creating binding sites on the surface for specific analytes. The C16 PEG2K Ceramide heteropolymer corona phase of SWCNTs allows selective binding and fluorescent detection of the hormone insulin. Herein, we incorporate quantum defects into the pristine structure of fluorescent SWCNTs to enable ratiometric sensing of analytes with insulin as a test case. SWCNTs are wrapped with C16 PEG2K Ceramide and subjected to UV irradiation in the presence of 5-iodoracil, inducing sp3 defects within the sp2 hybridized carbon atom network of the SWCNTs. This modification results in the emergence of a new emission feature (E11*) alongside the intrinsic E11 emission. Additionally, we scaled up a method for the isolation of single-chirality SWCNTs, which enhances the efficacy of CoPhMoRe by considerably simplifying the fluorescence spectrum and background emission of the sensor. Our observations show that insulin quenches the fluorescence of such sensors composed of chirality-sorted SWCNTs by an average of 20% more than that of sensors made from unsorted SWCNTs. The use of sorted SWCNTs also significantly improves the fabrication of ratiometric insulin sensors by enabling precise modulation of the E11*/E11 ratio. To quantify the ratiometric sensor response, a new set of metrics is introduced, including the spectral shift and intensity of the E11 and E11* emission features, along with their ratio. Based on these metrics, our findings suggest that a minimum E11*/E11 ratio of 3 is recommended for the transformation of a standard nanosensor into a ratiometric nanosensor via the incorporation of quantum defects into the pristine structure of a single-chirality SWCNT. The results herein underscore new, chemically enabled methods of improving CoPhMoRe sensors by the induction of quantum defects and use of chirality sorted SWCNTs.

