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Strain-induced dynamical heterogeneity and local viscoelastic behavior in complex fluids : 변형에 의한 복잡유체의 동적불균일성 및 미세유변학적 특성에 관한 연구

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dc.contributor.advisor안경현-
dc.contributor.author강희경-
dc.date.accessioned2017-07-13T08:35:46Z-
dc.date.available2017-07-13T08:35:46Z-
dc.date.issued2014-02-
dc.identifier.other000000017979-
dc.identifier.urihttps://hdl.handle.net/10371/119689-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 화학생물공학부, 2014. 2. 안경현.-
dc.description.abstractWhen stress or strain is applied to the complex fluids, they exhibit unusual mechanical responses due to the geometrical hindrances that the phase coexistence induces. Their rheological properties can be attributed to characteristics such as highly disorder, caging, and clustering on multiple length scales. With it, the dynamics of complex fluids receives attentions as its deeply related to the microstructure and rheological property. To supplement the conventional rheometry, we suggest particle tracking microrheology using direct visualization as an alternative. Using this method, we can observe the local viscoelastic behavior of materials as well as the dynamics on micron length scale. As a first step, we verify the experimental setup of microrheology with totally homogeneous materials such as various polymer solutions by comparing with the results from conventional rheometer. Then, as a second step, we try to control a step of developing mechanism of biofilms by measuring rheological properties of biofilms. It composed with extracellular polymeric substances (EPS) and bacterial cells which have been known to show viscoelastic behavior and have heterogeneous microstructures. From measuring the mean square displacements (MSDs) on the micro-scale, the dynamical heterogeneities of the biofilms are evaluated using van Hove correlation function and non-Gaussian parameter. The dynamical heterogeneity of the biofilms decreased as the wall shear rate increased, analogizing the structural heterogeneity of the biofilms on the different wall shear rate. By determining the local G and G at the low wall shear rate, the structures of biofilms are characterized as void, loose and dense network structures respectively. These kinds of structural diversity in the biofilms give a strong dynamical heterogeneity at low wall shear rate. In contrast, the narrow distribution of MSDs at the high wall shear rate was caused by the dense structure of biofilms. This result clearly gives the strong point of particle tracking microrheology on localized measurement. Finally, as a third step, we modified the previous microrheological method to report the effect of dynamical heterogeneity on the theoretical modeling of nonlinear elastic modulus and Brownian stress of colloidal depletion gels that have undergone yielding in high-rate step strains by modifying previous tracking method on the open system. When we apply step strains to colloidal gels with short-ranged depletion attraction using simple shear equipment, we find the existence of a subpopulation of slow and fast particles. Within this flow regime, small aggregates of particles connected by weak bonds are broken, leaving behind a network consisting of slowly-diffusing particles. These slow clusters form rigid cores that contribute to the remnant stress supported by the sample. Based on this observation, we compare the measured rheology to the theoretical elastic modulus calculated only with the localization length of the slow clusters. We find that this approach produces a far better agreement between theory and experiment. In this thesis, the dynamical heterogeneity of complex fluids gives a vehicle to characterize the structural heterogeneity under varied shear stress. Finally, the findings in this study set the importance of dynamical heterogeneity in the rheology of complex fluids such as bacterial community biofilms and depleting colloidal gels.-
dc.description.tableofcontentsAbstract i
List of Contents v
List of Tables ix
List of Figures x

1. Introduction 1
1.1. Microrheology 1
1.2. Controlling the bacterial biofilms 5
1.3. Dynamics of post-yielding colloidal gels 9
1.4. Outline of the thesis 12
2. Theory 16
3. Materials and methods 27
3.1. Polymer solutions 27
3.1.1. Materials preparations 27
3.1.2. Tracking process 29
3.1.3. Rotational rheometry 30
3.2. Bacterial community biofilms 31
3.2.1. Model bacterial strain 31
3.2.2. Experimental setup for measuring bacterial motion on the surface 31
3.2.3. Additional data processing on the bacterial motion 36
3.2.4. Experimental setup for measuring viscoelastic property of biofilms 38
3.2.5. Measurement 3D structure of biofilms using CLSM 40
3.3. Depleting attractive colloidal gels 42
3.3.1. Preparation of colloidal gels 42
3.3.2. Static and dynamic error 46
3.3.3. Experimental setup and procedures 49
3.3.4. Correction of drift velocity 50
4. Verification of the particle tracking microrheology 56
4.1. The slope of the MSD curves 56
4.2. Dynamic moduli 62
5. Controlling and removal of the bacterial community biofilm 71
5.1. The dynamics of bacteria on the anodic electrode 71
5.1.1. Effect of current density on bacterial displacement 71
5.1.2. Effect of ionic strength on displacement of PAO1s 83
5.1.3. Applicability for biofilm control 86
5.2. The local viscoelastic behavior of biofilms 90
5.2.1. Effect of applied during developing phase on the dynamical heterogeneities in biofilms 90
5.2.2. The local dynamics at low shear rate (88.9/s) 95
5.2.3. The local dynamics at high shear rate (237.0/s) 103
6. Dynamics of post-yielding colloidal gels 110
6.1. The MSD curves of post-yielding colloidal gels110
6.2. Strain-induced dynamical heterogeneities in colloidal gels 113
6.3. Modulus-dynamics relationship 118
7. Conclusions 129

Bibliography 132
국문요약 147
Curriculum Vitae 151
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dc.formatapplication/pdf-
dc.format.extent4454028 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectparticle tracking microrheology-
dc.subjectcomplex fluids-
dc.subjectbacterial community biofilms-
dc.subjectdepleting colloidal gels-
dc.subjectdynamical heterogeneity-
dc.subjectstructural heterogeneity-
dc.subjectlocal viscoelasticity-
dc.subjectmicrostructure-
dc.subjectshear stress-
dc.subjectMode Coupling Theory-
dc.subjectnonlinear elasticity-
dc.subject.ddc660-
dc.titleStrain-induced dynamical heterogeneity and local viscoelastic behavior in complex fluids-
dc.title.alternative변형에 의한 복잡유체의 동적불균일성 및 미세유변학적 특성에 관한 연구-
dc.typeThesis-
dc.contributor.AlternativeAuthorHeekyoung Kang-
dc.description.degreeDoctor-
dc.citation.pagesxx, 154-
dc.contributor.affiliation공과대학 화학생물공학부-
dc.date.awarded2014-02-
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