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Reversible Supracolloidal Self-Assembly of Cobalt Nanoparticles to Hollow Capsids and Their Superstructures
Authors:Dr Nonappa  Johannes S Haataja  Prof Jaakko V I Timonen  Dr Sami Malola  Dr Peter Engelhardt  Dr Nikolay Houbenov  Dr Manu Lahtinen  Prof Hannu Häkkinen  Prof Olli Ikkala
Institution:1. Department of Applied Physics, Aalto University School of Science, Puumiehenkuja 2, 02150 Espoo, Finland;2. Departments of Chemistry and Physics, Nanoscience centre University of Jyväskylä, Survontie 9, 40014 Jyväskylä, Finland;3. Department of Applied Physics, Aalto University School of Science, Puumiehenkuja 2, 02150 Espoo, Finland

Department of Pathology and Virology, Haartman Institute, University of Helsinki, P.O. Box 21, 00014 Helsinki, Finland;4. Department of Chemistry, University of Jyväskylä, Survontie 9, 40014 Jyväskylä, Finland

Abstract:The synthesis and spontaneous, reversible supracolloidal hydrogen bond-driven self-assembly of cobalt nanoparticles (CoNPs) into hollow shell-like capsids and their directed assembly to higher order superstructures is presented. CoNPs and capsids form in one step upon mixing dicobalt octacarbonyl (Co2CO8) and p-aminobenzoic acid (pABA) in 1,2-dichlorobenzene using heating-up synthesis without additional catalysts or stabilizers. This leads to pABA capped CoNPs (core ca. 5 nm) with a narrow size distribution. They spontaneously assemble into tunable spherical capsids (d≈50–200 nm) with a few-layered shells, as driven by inter-nanoparticle hydrogen bonds thus warranting supracolloidal self-assembly. The capsids can be reversibly disassembled and reassembled by controlling the hydrogen bonds upon heating or solvent exchanges. The superparamagnetic nature of CoNPs allows magnetic-field-directed self-assembly of capsids to capsid chains due to an interplay of induced dipoles and inter-capsid hydrogen bonds. Finally, self-assembly on air–water interface furnishes lightweight colloidal framework films.
Keywords:Elektronentomographie  Kapside  Kolloid-Selbstorganisation  Magnetische Nanopartikel  Wasserstoffbrücken
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