IDEAS home Printed from https://ideas.repec.org/a/nat/natcom/v14y2023i1d10.1038_s41467-023-39992-3.html
   My bibliography  Save this article

Macroscopic photonic single crystals via seeded growth of DNA-coated colloids

Author

Listed:
  • Alexander Hensley

    (Brandeis University)

  • Thomas E. Videbæk

    (Brandeis University)

  • Hunter Seyforth

    (Brandeis University)

  • William M. Jacobs

    (Princeton University)

  • W. Benjamin Rogers

    (Brandeis University)

Abstract

Photonic crystals—a class of materials whose optical properties derive from their structure in addition to their composition—can be created by self-assembling particles whose sizes are comparable to the wavelengths of visible light. Proof-of-principle studies have shown that DNA can be used to guide the self-assembly of micrometer-sized colloidal particles into fully programmable crystal structures with photonic properties in the visible spectrum. However, the extremely temperature-sensitive kinetics of micrometer-sized DNA-functionalized particles has frustrated attempts to grow large, monodisperse crystals that are required for photonic metamaterial applications. Here we describe a robust two-step protocol for self-assembling single-domain crystals that contain millions of optical-scale DNA-functionalized particles: Monodisperse crystals are initially assembled in monodisperse droplets made by microfluidics, after which they are grown to macroscopic dimensions via seeded diffusion-limited growth. We demonstrate the generality of our approach by assembling different macroscopic single-domain photonic crystals with metamaterial properties, like structural coloration, that depend on the underlying crystal structure. By circumventing the fundamental kinetic traps intrinsic to crystallization of optical-scale DNA-coated colloids, we eliminate a key barrier to engineering photonic devices from DNA-programmed materials.

Suggested Citation

  • Alexander Hensley & Thomas E. Videbæk & Hunter Seyforth & William M. Jacobs & W. Benjamin Rogers, 2023. "Macroscopic photonic single crystals via seeded growth of DNA-coated colloids," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-39992-3
    DOI: 10.1038/s41467-023-39992-3
    as

    Download full text from publisher

    File URL: https://www.nature.com/articles/s41467-023-39992-3
    File Function: Abstract
    Download Restriction: no

    File URL: https://libkey.io/10.1038/s41467-023-39992-3?utm_source=ideas
    LibKey link: if access is restricted and if your library uses this service, LibKey will redirect you to where you can use your library subscription to access this item
    ---><---

    References listed on IDEAS

    as
    1. J. D. Joannopoulos & Pierre R. Villeneuve & Shanhui Fan, 1997. "Photonic crystals: putting a new twist on light," Nature, Nature, vol. 386(6621), pages 143-149, March.
    2. Peter J. Santos & Paul A. Gabrys & Leonardo Z. Zornberg & Margaret S. Lee & Robert J. Macfarlane, 2021. "Macroscopic materials assembled from nanoparticle superlattices," Nature, Nature, vol. 591(7851), pages 586-591, March.
    3. Soyoung E. Seo & Martin Girard & Monica Olvera de la Cruz & Chad A. Mirkin, 2018. "Non-equilibrium anisotropic colloidal single crystal growth with DNA," Nature Communications, Nature, vol. 9(1), pages 1-8, December.
    4. J. D. Joannopoulos & Pierre R. Villeneuve & Shanhui Fan, 1997. "Erratum: Photonic crystals: putting a new twist on light," Nature, Nature, vol. 387(6635), pages 830-830, June.
    5. Seungkyu Lee & Heather A. Calcaterra & Sangmin Lee & Wisnu Hadibrata & Byeongdu Lee & EunBi Oh & Koray Aydin & Sharon C. Glotzer & Chad A. Mirkin, 2022. "Shape memory in self-adapting colloidal crystals," Nature, Nature, vol. 610(7933), pages 674-679, October.
    6. Marie T. Casey & Raynaldo T. Scarlett & W. Benjamin Rogers & Ian Jenkins & Talid Sinno & John C. Crocker, 2012. "Driving diffusionless transformations in colloidal crystals using DNA handshaking," Nature Communications, Nature, vol. 3(1), pages 1-8, January.
    7. Yu Wang & Yufeng Wang & Xiaolong Zheng & Étienne Ducrot & Jeremy S. Yodh & Marcus Weck & David J. Pine, 2015. "Crystallization of DNA-coated colloids," Nature Communications, Nature, vol. 6(1), pages 1-8, November.
    8. Yifan Wang & Ian C. Jenkins & James T. McGinley & Talid Sinno & John C. Crocker, 2017. "Colloidal crystals with diamond symmetry at optical lengthscales," Nature Communications, Nature, vol. 8(1), pages 1-8, April.
    9. Valerie J. Anderson & Henk N. W. Lekkerkerker, 2002. "Insights into phase transition kinetics from colloid science," Nature, Nature, vol. 416(6883), pages 811-815, April.
    10. E. Allahyarov & K. Sandomirski & S.U. Egelhaaf & H. Löwen, 2015. "Crystallization seeds favour crystallization only during initial growth," Nature Communications, Nature, vol. 6(1), pages 1-9, November.
    11. Evelyn Auyeung & Ting I. N. G. Li & Andrew J. Senesi & Abrin L. Schmucker & Bridget C. Pals & Monica Olvera de la Cruz & Chad A. Mirkin, 2014. "DNA-mediated nanoparticle crystallization into Wulff polyhedra," Nature, Nature, vol. 505(7481), pages 73-77, January.
    Full references (including those not matched with items on IDEAS)

    Most related items

    These are the items that most often cite the same works as this one and are cited by the same works as this one.
    1. Simone Zanotto & Giorgio Biasiol & Paulo V. Santos & Alessandro Pitanti, 2022. "Metamaterial-enabled asymmetric negative refraction of GHz mechanical waves," Nature Communications, Nature, vol. 13(1), pages 1-8, December.
    2. W. Belhadj & N. Ben Ali & H. Dakhlaoui & O. H. Alsalmi & H. Alsaif & A. Torchani, 2021. "Characterization of spectral features of cavity modes in one-dimensional graphene-based photonic crystal structures," The European Physical Journal B: Condensed Matter and Complex Systems, Springer;EDP Sciences, vol. 94(10), pages 1-11, October.
    3. H. Dehne & A. Reitenbach & A. R. Bausch, 2021. "Reversible and spatiotemporal control of colloidal structure formation," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
    4. Juan Xue & Xuewu Yin & Lulu Xue & Chenglin Zhang & Shihua Dong & Li Yang & Yuanlai Fang & Yong Li & Ling Li & Jiaxi Cui, 2022. "Self-growing photonic composites with programmable colors and mechanical properties," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    5. Fan Cui & Sophie Marbach & Jeana Aojie Zheng & Miranda Holmes-Cerfon & David J. Pine, 2022. "Comprehensive view of microscopic interactions between DNA-coated colloids," Nature Communications, Nature, vol. 13(1), pages 1-10, December.
    6. Yaowen Hu & Mengjie Yu & Neil Sinclair & Di Zhu & Rebecca Cheng & Cheng Wang & Marko Lončar, 2022. "Mirror-induced reflection in the frequency domain," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
    7. Mu Yang & Hao-Qing Zhang & Yu-Wei Liao & Zheng-Hao Liu & Zheng-Wei Zhou & Xing-Xiang Zhou & Jin-Shi Xu & Yong-Jian Han & Chuan-Feng Li & Guang-Can Guo, 2022. "Topological band structure via twisted photons in a degenerate cavity," Nature Communications, Nature, vol. 13(1), pages 1-7, December.
    8. Alaa M. Abd-Elnaiem & Zain Elabdeen A. Mohamed & Sayed Elshahat & Mohamed Almokhtar & Małgorzata Norek, 2023. "Recent Progress in the Fabrication of Photonic Crystals Based on Porous Anodic Materials," Energies, MDPI, vol. 16(10), pages 1-32, May.
    9. Yi Peng & Wei Li & Tim Still & Arjun G. Yodh & Yilong Han, 2023. "In situ observation of coalescence of nuclei in colloidal crystal-crystal transitions," Nature Communications, Nature, vol. 14(1), pages 1-10, December.
    10. Cheng, Xiao-Sheng & Deng, Qingying & Diao, Yuanan, 2023. "Constructions of DNA and polypeptide cages based on plane graphs and odd crossing π-junctions," Applied Mathematics and Computation, Elsevier, vol. 443(C).
    11. Piet J. M. Swinkels & Zhe Gong & Stefano Sacanna & Eva G. Noya & Peter Schall, 2023. "Visualizing defect dynamics by assembling the colloidal graphene lattice," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
    12. Minju Song & Yoonkyum Kim & Du San Baek & Ho Young Kim & Da Hwi Gu & Haiyang Li & Benjamin V. Cunning & Seong Eun Yang & Seung Hwae Heo & Seunghyun Lee & Minhyuk Kim & June Sung Lim & Hu Young Jeong &, 2023. "3D microprinting of inorganic porous materials by chemical linking-induced solidification of nanocrystals," Nature Communications, Nature, vol. 14(1), pages 1-13, December.
    13. Dimitris Bertsimas & Omid Nohadani, 2010. "Robust optimization with simulated annealing," Journal of Global Optimization, Springer, vol. 48(2), pages 323-334, October.
    14. Minghui Tan & Pan Tian & Qian Zhang & Guiqiang Zhu & Yuchen Liu & Mengjiao Cheng & Feng Shi, 2022. "Self-sorting in macroscopic supramolecular self-assembly via additive effects of capillary and magnetic forces," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
    15. Zhiwei Yang & Yanze Wei & Jingjing Wei & Zhijie Yang, 2022. "Chiral superstructures of inorganic nanorods by macroscopic mechanical grinding," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
    16. Pengji Zhou & Sharon C. Glotzer, 2021. "Inverse design of isotropic pair potentials using digital alchemy with a generalized Fourier potential," The European Physical Journal B: Condensed Matter and Complex Systems, Springer;EDP Sciences, vol. 94(12), pages 1-10, December.
    17. Bowen Sui & Youliang Zhu & Xuemei Jiang & Yifan Wang & Niboqia Zhang & Zhongyuan Lu & Bai Yang & Yunfeng Li, 2023. "Recastable assemblies of carbon dots into mechanically robust macroscopic materials," Nature Communications, Nature, vol. 14(1), pages 1-12, December.
    18. Sara Molinari & Robert F. Tesoriero & Dong Li & Swetha Sridhar & Rong Cai & Jayashree Soman & Kathleen R. Ryan & Paul D. Ashby & Caroline M. Ajo-Franklin, 2022. "A de novo matrix for macroscopic living materials from bacteria," Nature Communications, Nature, vol. 13(1), pages 1-13, December.

    More about this item

    Statistics

    Access and download statistics

    Corrections

    All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-39992-3. See general information about how to correct material in RePEc.

    If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.

    If CitEc recognized a bibliographic reference but did not link an item in RePEc to it, you can help with this form .

    If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.

    For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Sonal Shukla or Springer Nature Abstracting and Indexing (email available below). General contact details of provider: http://www.nature.com .

    Please note that corrections may take a couple of weeks to filter through the various RePEc services.

    IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.