Depletion-driven antiferromagnetic, paramagnetic, and ferromagnetic behavior in quasi-two-dimensional buckled colloidal solids

Author:

Hill Analisa1ORCID,Tanaka Michio1ORCID,Aptowicz Kevin B.2ORCID,Mishra Chandan K.3ORCID,Yodh A. G.1ORCID,Ma Xiaoguang45ORCID

Affiliation:

1. Department of Physics and Astronomy, University of Pennsylvania 1 , Philadelphia, Pennsylvania 19104, USA

2. Department of Physics and Engineering, West Chester University 2 , West Chester, Pennsylvania 19383, USA

3. Discipline of Physics, Indian Institute of Technology (IIT) Gandhinagar 3 , Palaj, Gujarat 382055, India

4. Center for Complex Flows and Soft Matter Research, Southern University of Science and Technology 4 , Shenzhen, Guangdong 518055, China

5. Department of Physics, Southern University of Science and Technology 5 , Shenzhen, Guangdong 518055, China

Abstract

We investigate quasi-two-dimensional buckled colloidal monolayers on a triangular lattice with tunable depletion interactions. Without depletion attraction, the experimental system provides a colloidal analog of the well-known geometrically frustrated Ising antiferromagnet [Y. Han et al., Nature 456, 898–903 (2008)]. In this contribution, we show that the added depletion attraction can influence both the magnitude and sign of an Ising spin coupling constant. As a result, the nearest-neighbor Ising “spin” interactions can be made to vary from antiferromagnetic to para- and ferromagnetic. Using a simple theory, we compute an effective Ising nearest-neighbor coupling constant, and we show how competition between entropic effects permits for the modification of the coupling constant. We then experimentally demonstrate depletion-induced modification of the coupling constant, including its sign, and other behaviors. Depletion interactions are induced by rod-like surfactant micelles that change length with temperature and thus offer means for tuning the depletion attraction in situ. Buckled colloidal suspensions exhibit a crossover from an Ising antiferromagnetic to paramagnetic phase as a function of increasing depletion attraction. Additional dynamical experiments reveal structural arrest in various regimes of the coupling-constant, driven by different mechanisms. In total, this work introduces novel colloidal matter with “magnetic” features and complex dynamics rarely observed in traditional spin systems.

Funder

National Science Foundation

MRSEC

National Natural Science Foundation of China

National Key Research and Development Program of China

Stable Support Plan Program of Shenzhen Natural Science Fund

Science and Engineering Research Board of Government of India

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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