Double-Lattice Packing of Pentagonal Gold Bipyramids in Supercrystals with Triclinic Symmetry.

evaporation-induced self-assembly gold bipyramids pentagonal packing supercrystals triclinic structure

Journal

Advanced materials (Deerfield Beach, Fla.)
ISSN: 1521-4095
Titre abrégé: Adv Mater
Pays: Germany
ID NLM: 9885358

Informations de publication

Date de publication:
May 2022
Historique:
revised: 11 03 2022
received: 27 01 2022
pubmed: 25 3 2022
medline: 25 3 2022
entrez: 24 3 2022
Statut: ppublish

Résumé

Pentagonal packing is a long-standing issue and a rich mathematical topic, brought to the fore by recent progress in nanoparticle design. Gold pentagonal bipyramids combine fivefold symmetry and anisotropy and their section varies along the length. In this work, colloidal supercrystals of pentagonal gold bipyramids are obtained in a compact arrangement that generalizes the optimal packing of regular pentagons in the plane. Multimodal investigations reveal a two-particle unit cell with triclinic symmetry, a lower symmetry than that of the building blocks. Monte Carlo computer simulations show that this lattice achieves the densest possible packing. Going beyond pentagons, further simulations show an odd-even effect of the number of sides on the packing: odd-sided bipyramids are non-centrosymmetric and require the double-lattice arrangement to recover inversion symmetry. The supercrystals display a facet-dependent optical response that is promising for sensing, metamaterials applications, and for fundamental studies of self-assembly processes.

Identifiants

pubmed: 35324025
doi: 10.1002/adma.202200883
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e2200883

Subventions

Organisme : Investissements d'Avenir grant from Labex PALM
ID : ANR-10-LABX-0039-PALM
Organisme : France-BioImaging
ID : ANR10-INBS-04-01
Organisme : Saclay Plant Science
ID : ANR-11-IDEX-0003-02

Informations de copyright

© 2022 Wiley-VCH GmbH.

Références

a) Z. Quan, J. Fang, Nano Today 2010, 5, 390;
b) J. Gong, R. S. Newman, M. Engel, M. Zhao, F. Bian, S. C. Glotzer, Z. Tang, Nat. Commun. 2017, 8, 14038;
c) P. F. Damasceno, M. Engel, S. C. Glotzer, Science 2012, 337, 453;
d) S. Torquato, Y. Jiao, Nature 2009, 460, 876;
e) M. H. Huang, S. Thoka, Nano Today 2015, 10, 81;
f) C. W. Liao, Y. S. Lin, K. Chanda, Y. F. Song, M. H. Huang, J. Am. Chem. Soc. 2013, 135, 2684;
g) J.-M. Meijer, A. Pal, S. Ouhajji, H. N. W. Lekkerkerker, A. P. Philipse, A. V. Petukhov, Nat. Commun. 2017, 8, 14352;
h) Y. Nagaoka, R. Tan, R. Li, H. Zhu, D. Eggert, Y. A. Wu, Y. Liu, Z. Wang, O. Chen, Nature 2018, 561, 378;
i) Y. Nagaoka, H. Zhu, D. Eggert, O. Chen, Science 2018, 362, 1396;
j) H. Lin, S. Lee, L. Sun, M. Spellings, M. Engel, S. C. Glotzer, C. A. Mirkin, Science 2017, 355, 931.
a) D. Frenkel, Nat. Mater. 2015, 14, 9;
b) L. Onsager, Ann. N.Y. Acad. Sci. 1949, 51, 627;
c) L. Scarabelli, C. Hamon, L. M. Liz-Marzán, Chem. Mater. 2017, 29, 15.
a) C. Zong, Expo. Math. 2014, 32, 297;
b) T. Janssen, A. Janner, Adv. Phys. 1987, 36, 519.
J. Kepler, The Harmony of the World, American Philosophical Society, Philadelphia, PA, USA 1997, 209, 509.
M. Rao, arXiv:1708.00274, 2017.
a) D. Schattschneider, Math. Mag. 1978, 51, 29;
b) J.-F. Sadoc, R. Mosseri, Geometrical Frustration, Cambridge University Press, Cambridge, UK 1999.
T. Hales, W. Kusner, arXiv:1602.07220, 2016;
b) C. L. Henley, Phys. Rev. B 1986, 34, 797.
D. S. Dye, A Grammar of Chinese Lattice, Harvard University Press, Cambridge, MA, USA 1949.
G. Kuperberg, W. Kuperberg, Discrete Comput. Geom. 1990, 5, 389.
T. Schilling, S. Pronk, B. Mulder, D. Frenkel, Phys. Rev. E 2005, 71, 036138.
a) N. Winckelmans, T. Altantzis, M. Grzelczak, A. Sánchez-Iglesias, L. M. Liz-Marzán, S. Bals, J. Phys. Chem. C 2018, 122, 13522;
b) Y. Xia, K. D. Gilroy, H. C. Peng, X. Xia, Angew. Chem., Int. Ed. 2017, 56, 60.
M. Liu, P. Guyot-Sionnest, J. Phys. Chem. B 2005, 109, 22192.
a) A. Sánchez-Iglesias, N. Winckelmans, T. Altantzis, S. Bals, M. Grzelczak, L. M. Liz-Marzán, J. Am. Chem. Soc. 2017, 139, 107;
b) D. Chateau, A. Liotta, F. Vadcard, J. R. Navarro, F. Chaput, J. Lermé, F. Lerouge, S. Parola, Nanoscale 2015, 7, 1934.
a) T. Ming, X. Kou, H. Chen, T. Wang, H.-L. Tam, K.-W. Cheah, J.-Y. Chen, J. Wang, Angew. Chem. Int. Ed 2008, 120, 9831;
b) Q. Shi, K. J. Si, D. Sikdar, L. W. Yap, M. Premaratne, W. Cheng, ACS Nano 2016, 10, 967.
A. Donev, F. H. Stillinger, P. M. Chaikin, S. Torquato, Phys. Rev. Lett. 2004, 92, 255506.
A. Trovato, T. X. Hoang, J. R. Banavar, A. Maritan, Proc. Natl. Acad. Sci. USA 2007, 104, 19187.
a) A. Haji-Akbari, M. Engel, S. C. Glotzer, Phys. Rev. Lett. 2011, 107, 215702;
b) A. Haji-Akbari, E. R. Chen, M. Engel, S. C. Glotzer, Phys. Rev. E 2013, 88, 012127.
M. J. Solomon, D. V. Boger, J. Rheol. 1998, 42, 929.
a) S. Li, L. Wang, B. Liu, Soft Matter 2020, 16, 8024;
b) J. Roller, A. Laganapan, J.-M. Meijer, M. Fuchs, A. Zumbusch, Proc. Natl. Acad. Sci. USA 2021, 118, e2018072118.
M. N. O'Brien, M. R. Jones, C. A. Mirkin, Proc. Natl. Acad. Sci. USA 2016, 113, 11717.
a) C. Hamon, M. N. Sanz-Ortiz, E. Modin, E. H. Hill, L. Scarabelli, A. Chuvilin, L. M. Liz-Marzan, Nanoscale 2016, 8, 7914;
b) J. E. S. van der Hoeven, E. B. van der Wee, D. A. M. de Winter, M. Hermes, Y. Liu, J. Fokkema, M. Bransen, M. A. van Huis, H. C. Gerritsen, P. E. de Jongh, A. van Blaaderen, Nanoscale 2019, 11, 5304.
L. Filion, M. Marechal, B. van Oorschot, D. Pelt, F. Smallenburg, M. Dijkstra, Phys. Rev. Lett. 2009, 103, 188302.
J. d. Graaf, L. Filion, M. Marechal, R. v. Roij, M. Dijkstra, J. Chem. Phys. 2012, 137, 214101.
D. E. Sands, Introduction to Crystallography, Dover Publications, Mineola, NY, USA 2012.
J. Dshemuchadse, arXiv:2112.07083, 2021.
a) J. Langer, D. Jimenez de Aberasturi, J. Aizpurua, R. A. Alvarez-Puebla, B. Auguie, J. J. Baumberg, G. C. Bazan, S. E. J. Bell, A. Boisen, A. G. Brolo, J. Choo, D. Cialla-May, V. Deckert, L. Fabris, K. Faulds, F. J. Garcia de Abajo, R. Goodacre, D. Graham, A. J. Haes, C. L. Haynes, C. Huck, T. Itoh, M. Kall, J. Kneipp, N. A. Kotov, H. Kuang, E. C. Le Ru, H. K. Lee, J. F. Li, X. Y. Ling, et al., ACS Nano 2020, 14, 28;
b) S. Schlücker, Angew. Chem., Int. Ed. 2014, 53, 4756.
a) M. Liu, P. Guyot-Sionnest, T.-W. Lee, S. K. Gray, Phys. Rev. B 2007, 76, 235428;
b) J. Reguera, J. Langer, D. Jimenez de Aberasturi, L. M. Liz-Marzan, Chem. Soc. Rev. 2017, 46, 3866.

Auteurs

Jieli Lyu (J)

Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay, 91405, France.

Wajdi Chaâbani (W)

Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay, 91405, France.

Evgeny Modin (E)

Electron Microscopy Laboratory, CIC NanoGUNE BRTA, Tolosa Hiribidea, 76, Donostia - San Sebastian, 20019, Spain.

Andrey Chuvilin (A)

Electron Microscopy Laboratory, CIC NanoGUNE BRTA, Tolosa Hiribidea, 76, Donostia - San Sebastian, 20019, Spain.
Basque Foundation of Science, IKERBASQUE, Bilbao, 48013, Spain.

Thomas Bizien (T)

SWING beamline, SOLEIL Synchrotron, Gif-sur-Yvette, 911190, France.

Frank Smallenburg (F)

Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay, 91405, France.

Marianne Impéror-Clerc (M)

Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay, 91405, France.

Doru Constantin (D)

Institut Charles Sadron, CNRS and Université de Strasbourg, Strasbourg, 67034, France.

Cyrille Hamon (C)

Université Paris-Saclay, CNRS, Laboratoire de Physique des Solides, Orsay, 91405, France.

Classifications MeSH