1 |
Sticky-probe active microrheology: Part 2. The influence of attractions on non-Newtonian flow Huang DE, Zia RN Journal of Colloid and Interface Science, 562, 293, 2020 |
2 |
Toward a nonequilibrium Stokes-Einstein relation via active microrheology of hydrodynamically interacting colloidal dispersions Chu HCW, Zia RN Journal of Colloid and Interface Science, 539, 388, 2019 |
3 |
Sticky, active microrheology: Part 1. Linear-response Huang DE, Zia RN Journal of Colloid and Interface Science, 554, 580, 2019 |
4 |
Influence of structure on the linear response rheology of colloidal gels Johnson LC, Zia RN, Moghimi E, Petekidis G Journal of Rheology, 63(4), 583, 2019 |
5 |
The Impact of Hydrodynamics on Viscosity Evolution in Colloidal Dispersions: Transient, Nonlinear Microrheology Mohanty RP, Zia RN AIChE Journal, 64(8), 3198, 2018 |
6 |
The non-Newtonian rheology of hydrodynamically interacting colloids via active, nonlinear microrheology Chu HCW, Zia RN Journal of Rheology, 61(3), 551, 2017 |
7 |
Active microrheology of hydrodynamically interacting colloids: Normal stresses and entropic energy density Chu HCW, Zia RN Journal of Rheology, 60(4), 755, 2016 |
8 |
Delayed yield in colloidal gels: Creep, flow, and re-entrant solid regimes Landrum BJ, Russel WB, Zia RN Journal of Rheology, 60(4), 783, 2016 |
9 |
Large amplitude oscillatory microrheology Swan JW, Zia RN, Brady JF Journal of Rheology, 58(1), 1, 2014 |
10 |
A micro-mechanical study of coarsening and rheology of colloidal gels: Cage building, cage hopping, and Smoluchowski's ratchet Zia RN, Landrum BJ, Russel WB Journal of Rheology, 58(5), 1121, 2014 |