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Ultrathin Boron Growth onto Nanodiamond Surfaces via Electrophilic Boron Precursors

Title: Ultrathin Boron Growth onto Nanodiamond Surfaces via Electrophilic Boron Precursors
Authors: Govindaraju, Krishna; Supreme, Tyanna; Labunsky, Daniel N.; Martin, Nicole; Del Rosario, Juan Miguel; Washington, Alana; Uwadiale, Ezhioghode O.; Adjei, Solomon; Ladjadj, Sandra; Melendrez, Cynthia V.; Lee, Sang Jun; Altoe, Maria V.; Green, Avery; Riano, Sebastian; Sainio, Sami; Nordlund, Dennis; Wolcott, Abraham
Source: Faculty Research, Scholarly, and Creative Activity
Publisher Information: SJSU ScholarWorks
Publication Year: 2024
Collection: San José State University: SJSU ScholarWorks
Subject Terms: boron neutron capture therapy; diamond; nanoscale diamond; surface chemistry; templated growth; Chemistry
Description: Diamond as a templating substrate is largely unexplored, and the unique properties of diamond, including its large bandgap, thermal conductance, and lack of cytotoxicity, makes it versatile in emergent technologies in medicine and quantum sensing. Surface termination of an inert diamond substrate and its chemical reactivity are key in generating new bonds for nucleation and growth of an overlayer material. Oxidized high-pressure high temperature (HPHT) nanodiamonds (NDs) are largely terminated by alcohols that act as nucleophiles to initiate covalent bond formation when an electrophilic reactant is available. In this work, we demonstrate a templated synthesis of ultrathin boron on ND surfaces using trigonal boron compounds. Boron trichloride (BCl3), boron tribromide (BBr3), and borane (BH3) were found to react with ND substrates at room temperature in inert conditions. BBr3 and BCl3 were highly reactive with the diamond surface, and sheet-like structures were produced and verified with electron microscopy. Surface-sensitive spectroscopies were used to probe the molecular and atomic structure of the ND constructs’ surface, and quantification showed the boron shell was less than 1 nm thick after 1–24 h reactions. Observation of the reaction supports a self-terminating mechanism, similar to atomic layer deposition growth, and is likely due to the quenching of alcohols on the diamond surface. X-ray absorption spectroscopy revealed that boron-termination generated midgap electronic states that were originally predicted by density functional theory (DFT) several years ago. DFT also predicted a negative electron surface, which has yet to be confirmed experimentally here. The boron-diamond nanostructures were found to aggregate in dichloromethane and were dispersed in various solvents and characterized with dynamic light scattering for future cell imaging or cancer therapy applications using boron neutron capture therapy (BNCT). The unique templating mechanism based on nucleophilic alcohols and electrophilic trigonal ...
Document Type: text
File Description: application/pdf
Language: unknown
Relation: https://scholarworks.sjsu.edu/faculty_rsca/5628; https://scholarworks.sjsu.edu/context/faculty_rsca/article/6627/viewcontent/Ultrathin_20Boron_20Growth_20onto_20Nanodiamond_20Surfaces_20via_20Electrophilic_20Boron_20Precursors.pdf
DOI: 10.3390/nano14151274
Availability: https://scholarworks.sjsu.edu/faculty_rsca/5628; https://doi.org/10.3390/nano14151274; https://scholarworks.sjsu.edu/context/faculty_rsca/article/6627/viewcontent/Ultrathin_20Boron_20Growth_20onto_20Nanodiamond_20Surfaces_20via_20Electrophilic_20Boron_20Precursors.pdf
Rights: http://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.FCCC1F1B
Database: BASE