Literature DB >> 28759888

High-temperature crystallization of nanocrystals into three-dimensional superlattices.

Liheng Wu1,2, Joshua J Willis2, Ian Salmon McKay2, Benjamin T Diroll3, Jian Qin2, Matteo Cargnello2,4, Christopher J Tassone1.   

Abstract

Crystallization of colloidal nanocrystals into superlattices represents a practical bottom-up process with which to create ordered metamaterials with emergent functionalities. With precise control over the size, shape and composition of individual nanocrystals, various single- and multi-component nanocrystal superlattices have been produced, the lattice structures and chemical compositions of which can be accurately engineered. Nanocrystal superlattices are typically prepared by carefully controlling the assembly process through solvent evaporation or destabilization or through DNA-guided crystallization. Slow solvent evaporation or cooling of nanocrystal solutions (over hours or days) is the key element for successful crystallization processes. Here we report the rapid growth (seconds) of micrometre-sized, face-centred-cubic, three-dimensional nanocrystal superlattices during colloidal synthesis at high temperatures (more than 230 degrees Celsius). Using in situ small-angle X-ray scattering, we observe continuous growth of individual nanocrystals within the lattices, which results in simultaneous lattice expansion and fine nanocrystal size control due to the superlattice templates. Thermodynamic models demonstrate that balanced attractive and repulsive interparticle interactions dictated by the ligand coverage on nanocrystal surfaces and nanocrystal core size are responsible for the crystallization process. The interparticle interactions can also be controlled to form different superlattice structures, such as hexagonal close-packed lattices. The rational assembly of various nanocrystal systems into novel materials is thus facilitated for both fundamental research and for practical applications in the fields of magnetics, electronics and catalysis.

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Year:  2017        PMID: 28759888     DOI: 10.1038/nature23308

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  26 in total

1.  Substitutional doping in nanocrystal superlattices.

Authors:  Matteo Cargnello; Aaron C Johnston-Peck; Benjamin T Diroll; Eric Wong; Bianca Datta; Divij Damodhar; Vicky V T Doan-Nguyen; Andrew A Herzing; Cherie R Kagan; Christopher B Murray
Journal:  Nature       Date:  2015-08-27       Impact factor: 49.962

2.  DNA-guided crystallization of colloidal nanoparticles.

Authors:  Dmytro Nykypanchuk; Mathew M Maye; Daniel van der Lelie; Oleg Gang
Journal:  Nature       Date:  2008-01-31       Impact factor: 49.962

Review 3.  Shape-controlled synthesis of metal nanocrystals: simple chemistry meets complex physics?

Authors:  Younan Xia; Yujie Xiong; Byungkwon Lim; Sara E Skrabalak
Journal:  Angew Chem Int Ed Engl       Date:  2009       Impact factor: 15.336

4.  Size-dependent multiple twinning in nanocrystal superlattices.

Authors:  Sara M Rupich; Elena V Shevchenko; Maryna I Bodnarchuk; Byeongdu Lee; Dmitri V Talapin
Journal:  J Am Chem Soc       Date:  2010-01-13       Impact factor: 15.419

Review 5.  Nanoscale forces and their uses in self-assembly.

Authors:  Kyle J M Bishop; Christopher E Wilmer; Siowling Soh; Bartosz A Grzybowski
Journal:  Small       Date:  2009-07       Impact factor: 13.281

6.  Lattice engineering through nanoparticle-DNA frameworks.

Authors:  Ye Tian; Yugang Zhang; Tong Wang; Huolin L Xin; Huilin Li; Oleg Gang
Journal:  Nat Mater       Date:  2016-02-22       Impact factor: 43.841

7.  Subnanometre ligand-shell asymmetry leads to Janus-like nanoparticle membranes.

Authors:  Zhang Jiang; Jinbo He; Sanket A Deshmukh; Pongsakorn Kanjanaboos; Ganesh Kamath; Yifan Wang; Subramanian K R S Sankaranarayanan; Jin Wang; Heinrich M Jaeger; Xiao-Min Lin
Journal:  Nat Mater       Date:  2015-06-08       Impact factor: 43.841

8.  In situ study of the formation mechanism of two-dimensional superlattices from PbSe nanocrystals.

Authors:  Jaco J Geuchies; Carlo van Overbeek; Wiel H Evers; Bart Goris; Annick de Backer; Anjan P Gantapara; Freddy T Rabouw; Jan Hilhorst; Joep L Peters; Oleg Konovalov; Andrei V Petukhov; Marjolein Dijkstra; Laurens D A Siebbeles; Sandra van Aert; Sara Bals; Daniel Vanmaekelbergh
Journal:  Nat Mater       Date:  2016-09-05       Impact factor: 43.841

9.  Monodisperse FePt nanoparticles and ferromagnetic FePt nanocrystal superlattices

Authors: 
Journal:  Science       Date:  2000-03-17       Impact factor: 47.728

10.  Structural characterization of self-assembled multifunctional binary nanoparticle superlattices.

Authors:  Elena V Shevchenko; Dmitri V Talapin; Christopher B Murray; Stephen O'Brien
Journal:  J Am Chem Soc       Date:  2006-03-22       Impact factor: 15.419

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  14 in total

1.  Corrigendum: High-temperature crystallization of nanocrystals into three-dimensional superlattices.

Authors:  Liheng Wu; Joshua J Willis; Ian Salmon McKay; Benjamin T Diroll; Jian Qin; Matteo Cargnello; Christopher J Tassone
Journal:  Nature       Date:  2017-09-20       Impact factor: 49.962

2.  Nanocrystal superlattices: No need to wait.

Authors:  Kun Liu; Eugenia Kumacheva
Journal:  Nat Mater       Date:  2017-08-29       Impact factor: 43.841

3.  Calculating small-angle scattering intensity functions from electron-microscopy images.

Authors:  Batuhan Yildirim; Adam Washington; James Doutch; Jacqueline M Cole
Journal:  RSC Adv       Date:  2022-06-06       Impact factor: 4.036

4.  Observation of ordered organic capping ligands on semiconducting quantum dots via powder X-ray diffraction.

Authors:  Jason J Calvin; Tierni M Kaufman; Adam B Sedlak; Michelle F Crook; A Paul Alivisatos
Journal:  Nat Commun       Date:  2021-05-11       Impact factor: 14.919

5.  Electron microscopy of nanoparticle superlattice formation at a solid-liquid interface in nonpolar liquids.

Authors:  E Cepeda-Perez; D Doblas; T Kraus; N de Jonge
Journal:  Sci Adv       Date:  2020-05-13       Impact factor: 14.136

6.  Crystallization of Nanocrystals in Spherical Confinement Probed by in Situ X-ray Scattering.

Authors:  Federico Montanarella; Jaco J Geuchies; Tonnishtha Dasgupta; P Tim Prins; Carlo van Overbeek; Rajeev Dattani; Patrick Baesjou; Marjolein Dijkstra; Andrei V Petukhov; Alfons van Blaaderen; Daniel Vanmaekelbergh
Journal:  Nano Lett       Date:  2018-05-24       Impact factor: 11.189

7.  Space- and time-resolved small angle X-ray scattering to probe assembly of silver nanocrystal superlattices.

Authors:  Yixuan Yu; Dian Yu; Babak Sadigh; Christine A Orme
Journal:  Nat Commun       Date:  2018-10-11       Impact factor: 14.919

8.  Ordered colloidal clusters constructed by nanocrystals with valence for efficient CO2 photoreduction.

Authors:  Jianwei Nai; Sibo Wang; Xiong Wen David Lou
Journal:  Sci Adv       Date:  2019-12-13       Impact factor: 14.136

9.  Surface-ligand-induced crystallographic disorder-order transition in oriented attachment for the tuneable assembly of mesocrystals.

Authors:  Bum Chul Park; Min Jun Ko; Young Kwang Kim; Gyu Won Kim; Myeong Soo Kim; Thomas Myeongseok Koo; Hong En Fu; Young Keun Kim
Journal:  Nat Commun       Date:  2022-03-03       Impact factor: 14.919

Review 10.  Shaping non-noble metal nanocrystals via colloidal chemistry.

Authors:  Valeria Mantella; Laia Castilla-Amorós; Raffaella Buonsanti
Journal:  Chem Sci       Date:  2020-10-05       Impact factor: 9.825

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