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Chemically Adjusting Plasma Temperature Energy and Reactivity (CAPTEAR) Method Using NOx and Combustion for Selective Synthesis of Sc3N@C80 Metallic Nitride Fullerenes

机译:使用NOx和燃烧化学调节等离子体温度能量和反应性(CAPTEAR)方法以选择性合成Sc3N @ C80金属氮化物富勒烯

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摘要

Goals are (1) to selectively synthesize MNFs in lieu of empty-cage fullerenes (e.g., C60, C70) without compromising MNF yield and (2) to test our hypothesis that MNFs possess a different set of optimal formation parameters than empty-cage fullerenes. In this work, we introduce a novel approach for the selective synthesis of metallic nitride fullerenes (MNFs). This new method is “Chemically Adjusting Plasma Temperature, Energy and Reactivity” (CAPTEAR). The CAPTEAR approach with copper nitrate hydrate uses NOx vapor from NOx generating solid reagents, air and combustion to “tune” the temperature, energy and reactivity of the plasma environment. The extent of temperature, energy and reactive environment is stoichiometrically varied until optimal conditions for selective MNF synthesis are achieved. Analysis of soot extracts indicate that percentages of C60 and Sc3N@C80 are inversely related, whereas the percentages of C70 and higher empty-cage C2n fullerenes are largely unaffected. Hence, there may be a “competitive link” in the formation and mechanism of C60 and Sc3N@C80. Using this CAPTEAR method, purified MNFs (96% Sc3N@C80, 12 mg) have been obtained in soot extracts without a significant penalty in milligram yield when compared to control soot extracts (4% Sc3N@C80, 13 mg Sc3N@C80). The CAPTEAR process with Cu(NO3)2·2.5 H2O uses an exothermic nitrate moiety to suppress empty-cage fullerene formation, whereas Cu functions as a catalyst additive to offset the reactive plasma environment and boost the Sc3N@C80 MNF production.
机译:目标是(1)选择性合成MNF代替空笼式富勒烯(例如C60,C70),而不会损害MNF的产率;(2)检验我们的假设:MNF与空笼式富勒烯具有不同的最佳形成参数集。在这项工作中,我们介绍了一种选择性合成金属氮化物富勒烯(MNFs)的新颖方法。这种新方法是“化学调节血浆温度,能量和反应性”(CAPTEAR)。采用硝酸铜水合物的CAPTEAR方法利用来自NOx的NOx蒸气产生固体试剂,空气和燃烧来“调节”等离子体环境的温度,能量和反应性。温度,能量和反应性环境的程度是化学计量变化的,直到达到选择性MNF合成的最佳条件为止。烟灰提取物的分析表明,C60和Sc3N @ C80的百分比成反比,而C70和高空笼式C2n富勒烯的百分比基本不受影响。因此,C60和Sc3N @ C80的形成和机理可能存在“竞争联系”。使用这种CAPTEAR方法,与对照烟so提取物(4%Sc3N @ C80,13 mg Sc 3)相比,从烟ot提取物中获得了纯化的MNF(96%Sc3N @ C80,12 mg),而毫克收率却没有显着降低。 N @ C 80 )。具有Cu(NO 3 2 ·2.5 H 2 O的CAPTEAR过程使用放热硝酸盐部分抑制空笼富勒烯的形成,而铜起到催化剂添加剂的作用,以抵消反应性等离子体环境并提高Sc 3 N @ C 80 MNF的产生。

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