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Dive into the research topics where Daniel T. N. Chen is active.

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Featured researches published by Daniel T. N. Chen.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Morphologically controlled synthesis of colloidal upconversion nanophosphors and their shape-directed self-assembly

Xingchen Ye; Joshua E. Collins; Yijin Kang; Jun Chen; Daniel T. N. Chen; Arjun G. Yodh; Christopher B. Murray

We report a one-pot chemical approach for the synthesis of highly monodisperse colloidal nanophosphors displaying bright upconversion luminescence under 980 nm excitation. This general method optimizes the synthesis with initial heating rates up to 100 °C/minute generating a rich family of nanoscale building blocks with distinct morphologies (spheres, rods, hexagonal prisms, and plates) and upconversion emission tunable through the choice of rare earth dopants. Furthermore, we employ an interfacial assembly strategy to organize these nanocrystals (NCs) into superlattices over multiple length scales facilitating the NC characterization and enabling systematic studies of shape-directed assembly. The global and local ordering of these superstructures is programmed by the precise engineering of individual NC’s size and shape. This dramatically improved nanophosphor synthesis together with insights from shape-directed assembly will advance the investigation of an array of emerging biological and energy-related nanophosphor applications.


Nature | 2009

Thermal vestige of the zero-temperature jamming transition

Zexin Zhang; Ning Xu; Daniel T. N. Chen; Peter Yunker; Ahmed Alsayed; Kevin B. Aptowicz; Piotr Habdas; Andrea J. Liu; Sidney R. Nagel; Arjun G. Yodh

When the packing fraction is increased sufficiently, loose particulates jam to form a rigid solid in which the constituents are no longer free to move. In typical granular materials and foams, the thermal energy is too small to produce structural rearrangements. In this zero-temperature (T = 0) limit, multiple diverging and vanishing length scales characterize the approach to a sharp jamming transition. However, because thermal motion becomes relevant when the particles are small enough, it is imperative to understand how these length scales evolve as the temperature is increased. Here we used both colloidal experiments and computer simulations to progress beyond the zero-temperature limit to track one of the key parameters—the overlap distance between neighbouring particles—which vanishes at the T = 0 jamming transition. We find that this structural feature retains a vestige of its T = 0 behaviour and evolves in an unusual manner, which has masked its appearance until now. It is evident as a function of packing fraction at fixed temperature, but not as a function of temperature at fixed packing fraction or pressure. Our results conclusively demonstrate that length scales associated with the T = 0 jamming transition persist in thermal systems, not only in simulations but also in laboratory experiments.


Physical Review Letters | 2006

Fluctuations and Rheology in Active Bacterial Suspensions

Daniel T. N. Chen; Andy Lau; Lawrence A. Hough; Mohammad F. Islam; Mark Goulian; T. C. Lubensky; Arjun G. Yodh

We probe nonequilibrium properties of an active bacterial bath through measurements of correlations of passive tracer particles and the response function of a driven, optically trapped tracer. These measurements demonstrate violation of the fluctuation-dissipation theorem and enable us to extract the power spectrum of the active stress fluctuations. In some cases, we observe 1/sqrt[omega] scaling in the noise spectrum which we show can be derived from a theoretical model incorporating coupled stress, orientation, and concentration fluctuations of the bacteria.


Annual Review of Condensed Matter Physics | 2010

Rheology of Soft Materials

Daniel T. N. Chen; Qi Wen; Paul A. Janmey; John C. Crocker; Arjun G. Yodh


Physical Review Letters | 2003

Rheological microscopy: local mechanical properties from microrheology.

Daniel T. N. Chen; Eric R. Weeks; John C. Crocker; Mohammad F. Islam; Ritu Verma; J. Gruber; Alex J. Levine; T. C. Lubensky; Arjun G. Yodh


Physical Review Letters | 2010

Low-Frequency Vibrations of Soft Colloidal Glasses

Ken Chen; Wouter G. Ellenbroek; Zexin Zhang; Daniel T. N. Chen; Peter Yunker; Silke Henkes; Carolina Brito; Olivier Dauchot; Win Van Saarloos; Andrea J. Liu; Arjun G. Yodh


Macromolecules | 2010

Rheology of Carbon Nanotube Networks During Gelation

Daniel T. N. Chen; Ke Chen; Lawrence A. Hough; Mohammad F. Islam; Arjun G. Yodh


Bulletin of the American Physical Society | 2008

Jamming transition in a temperature-sensitive 2D colloidal suspension

Zexin Zhang; Daniel T. N. Chen; Arjun G. Yodh; Kevin B. Aptowicz; Piotr Habdas


Bulletin of the American Physical Society | 2008

Point response of a 2D packing of soft colloidal spheres near the jamming transition.

Peter Yunker; Daniel T. N. Chen; Zexin Zhang; Arjun G. Yodh


Bulletin of the American Physical Society | 2005

A Microrheological Study of the Time Dependent Gelation of Single Wall Carbon Nanotube Suspensions.

Daniel T. N. Chen; Lawrence A. Hough; Mohammad F. Islam; Arjun G. Yodh

Collaboration


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Arjun G. Yodh

University of Pennsylvania

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Mohammad F. Islam

Carnegie Mellon University

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John C. Crocker

University of Pennsylvania

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T. C. Lubensky

University of Pennsylvania

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Alex J. Levine

University of California

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Lawrence A. Hough

University of Pennsylvania

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Peter Yunker

University of Pennsylvania

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Andrea J. Liu

University of Pennsylvania

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Kevin B. Aptowicz

West Chester University of Pennsylvania

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Piotr Habdas

Saint Joseph's University

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