Chemically Adjusting Plasma Temperature, Energy, and Reactivity (CAPTEAR) Method Using NOx and Combustion for Selective Synthesis of Sc3N@C80 Metallic Nitride Fullerenes
- 1 December 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 129 (51) , 16257-16262
- https://doi.org/10.1021/ja077305z
Abstract
Goals are (1) to selectively synthesize metallic nitride fullerenes (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. 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 Sc3[email protected]80 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 Sc3[email protected]80. Using this CAPTEAR method, purified MNFs (96% Sc3[email protected]80, 12 mg) have been obtained in soot extracts without a significant penalty in milligram yield when compared to control soot extracts (4% Sc3[email protected]80, 13 mg of Sc3[email protected]80). The CAPTEAR process with Cu(NO3)2·2.5H2O 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 Sc3[email protected]80 MNF production.Keywords
This publication has 31 references indexed in Scilit:
- Metal Nitride Cluster Fullerenes: Their Current State and Future ProspectsSmall, 2007
- Rapid Removal of D5h Isomer Using the “Stir and Filter Approach” and Isolation of Large Quantities of Isomerically Pure Sc3N@C80 Metallic Nitride FullerenesJournal of the American Chemical Society, 2007
- A Facile Route to the Non‐IPR Fullerene Sc3N@C68: Synthesis, Spectroscopic Characterization, and Density Functional Theory Computations (IPR=Isolated Pentagon Rule)Chemistry – A European Journal, 2006
- Structure and Enhanced Reactivity Rates of the D5h Sc3N@C80 and Lu3N@C80 Metallofullerene Isomers: The Importance of the Pyracylene MotifJournal of the American Chemical Society, 2006
- Expanding the Number of Stable Isomeric Structures of the C80 Cage: A New Fullerene Dy3N@C80Chemistry – A European Journal, 2005
- Trimetallic Nitride Endohedral Metallofullerenes: Reactivity Dictated by the Encapsulated Metal ClusterJournal of the American Chemical Society, 2005
- Magnetic Moments of the Endohedral Cluster Fullerenes Ho3N@C80 and Tb3N@C80: The Role of Ligand FieldsAngewandte Chemie International Edition in English, 2005
- Synthesis of the first water-soluble trimetallic nitride endohedral metallofullerolsSynthetic Metals, 2002
- Renormalized molecular levels in amolecular electronic devicePhysical Review B, 2001
- The Role of Nitrous Oxide in the Mechanism of Thermal Nitric Oxide Formation within Flame Temperature RangeCombustion Science and Technology, 1997