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Methods of changing low molecular weight gel properties through gelation kinetics.
Soft Matter, 20(19),
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Classification of chemically modified red blood cells in microflow using machine learning video analysis.
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Correction: Multi-layer 3D printed dipeptide-based low molecular weight gels.
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New quasiperiodic structures in nematic liquid crystals.
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Investigating multigelator systems across multiple length scales.
Soft Matter, 19(26),
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Compressional stress stiffening & softening of soft hydrogels - how to avoid artefacts in their rheological characterisation.
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Controllable particle migration in liquid crystal flows.
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Multi-layer 3D printed dipeptide-based low molecular weight gels.
Soft Matter, 18(32),
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Synthesis and characterisation of diketopyrrolopyrrole-based hydrogels.
Soft Matter, 18(19),
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Using small angle scattering to understand low molecular weight gels.
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Electrofabrication of large volume di- and tripeptide hydrogels via hydroquinone oxidation.
Soft Matter, 18(5),
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Enhancement of the mechanical properties of lysine-containing peptide-based supramolecular hydrogels by chemical cross-linking.
Soft Matter, 17(37),
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Understanding gel-to-crystal transitions in supramolecular gels.
Soft Matter, 17(30),
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Immobilising giant unilamellar vesicles with zirconium metal-organic framework anchors.
Soft Matter, 17(8),
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Electrically controlled topological micro cargo transportation.
Soft Matter, 16(12),
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Prescribing patterns in growing tubular soft matter by initial residual stress.
Soft Matter, 15(42),
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Using optical tweezing to control phase separation and nucleation near a liquid–liquid critical point.
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Using cavitation rheology to understand dipeptide-based low molecular weight gels.
Soft Matter, 15(31),
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Cross, Emily R. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
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Probing the self-assembled structures and pKa of hydrogels using electrochemical methods.
Soft Matter, 15(7),
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Mechanical chiral resolution.
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Comment on "A symmetrical method to obtain shear moduli from microrheology" by Kengo Nishi, Maria L. Kilfoil, Christoph F. Schmidt, and F. C. MacKintosh, Soft Matter, 2018, 14, 3716.
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Tough high modulus hydrogels derived from carbon-nitride via an ethylene glycol co-solvent route.
Soft Matter, 14(14),
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Optimising low molecular weight hydrogels for automated 3D printing.
Soft Matter, 13(45),
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Supramolecular polymer hydrogels induced by host-guest interactions with di-[cyclobis(paraquat-p-phenylene)] cross-linkers: from molecular complexation to viscoelastic properties.
Soft Matter, 13(31),
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Controlling the network type in self-assembled dipeptide hydrogels.
Soft Matter, 13(9),
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Wallace, Matthew, Iggo, Jonathan A. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
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Probing the surface chemistry of self-assembled peptide hydrogels using solution-state NMR spectroscopy.
Soft Matter, 13(8),
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Cardoso, Andre Zamith, Mears, Laura L.E., Cattoz, Beatrice N., Griffiths, Peter C., Schweins, Ralf and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
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Linking micellar structures to hydrogelation for salt-triggered dipeptide gelators.
Soft Matter, 12(15),
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ORCID: https://orcid.org/0000-0002-3176-1350
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On the syneresis of an OPV functionalised dipeptide hydrogel.
Soft Matter, 12(37),
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ORCID: https://orcid.org/0000-0002-2070-6700, Wylie, Douglas, Klug, David R. and Cooper, Jonathan M.
ORCID: https://orcid.org/0000-0002-2358-1050
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Acoustic control of evaporative colloidal self-assembly: suppression of the coffee-ring effect.
Soft Matter, 11(36),
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Raeburn, Jaclyn, Mendoza-Cuenca, Cristina, Cattoz, Beatrice N., Little, Marc A., Terry, Ann E., Zamith Cardoso, Andre, Griffiths, Peter C. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
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The effect of solvent choice on the gelation and final hydrogel properties of Fmoc–diphenylalanine.
Soft Matter, 11(5),
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Tassieri, Manlio ORCID: https://orcid.org/0000-0002-6807-0385
(2015)
Linear microrheology with optical tweezers of living cells 'is not an option'!
Soft Matter, 11,
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Morris, Kyle L., Chen, Lin, Rodger, Alison, Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350 and Serpell, Louise C.
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Structural determinants in a library of low molecular weight gelators.
Soft Matter, 11(6),
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Raeburn, Jaclyn, Chen, Lin, Awhida, Salmah, Deller, Robert C., Vatish, Manu, Gibson, Matthew I. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
(2015)
Using molecular rotors to probe gelation.
Soft Matter, 11(18),
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Tsuda, Soichiro, Suzuki, Hiroaki and Yomo, Tetsuya (2014) Statistical analysis of vesicle morphology dynamics based on a free energy landscape. Soft Matter, 10(32), pp. 6038-6046. (doi: 10.1039/c4sm00992d)
Thornton, Kate, Abul-Haija, Yousef M. ORCID: https://orcid.org/0000-0002-0357-0653, Hodson, Nigel and Ulijn, Rein V.
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Mechanistic insights into phosphatase triggered self-assembly including enhancement of biocatalytic conversion rate.
Soft Matter, 9(39),
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Napoli, G. and Vergori, L. (2013) Effective free energies for cholesteric shells. Soft Matter, 9(34), pp. 8378-8387. (doi: 10.1039/c3sm50605c)
Wallace, Matthew, Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350 and Iggo, Jonathan A.
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Analysis of the mesh size in a supramolecular hydrogel by PFG-NMR spectroscopy.
Soft Matter, 9(22),
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Cheng, Shengfeng, Aggarwal, Ankush ORCID: https://orcid.org/0000-0002-1755-8807 and Stevens, Mark J.
(2012)
Self-assembly of artificial microtubules.
Soft Matter, 8(20),
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Slater, Rebecca A., McDonald, Tom O., Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, Draper, Emily R.
ORCID: https://orcid.org/0000-0002-3900-7934, Weaver, Jonathan V. M. and Rannard, Steve P.
(2012)
Architecture-driven aqueous stability of hydrophobic, branched polymer nanoparticles prepared by rapid nanoprecipitation.
Soft Matter, 8(38),
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Cantini, M. ORCID: https://orcid.org/0000-0003-0326-1508, Rico, P., Moratal, D. and Salmerón-Sánchez, M.
ORCID: https://orcid.org/0000-0002-8112-2100
(2012)
Controlled wettability, same chemistry: biological activity of plasma-polymerized coatings.
Soft Matter, 8(20),
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Grigoriou, Stella, Johnson, Eleanor K., Chen, Lin, Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, James, Tony D. and Cameron, Petra J.
(2012)
Dipeptide hydrogel formation triggered by boronic acid–sugar recognition.
Soft Matter, 8(25),
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Pont, Guillaume, Chen, Lin, Spiller, David G. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
(2012)
The effect of polymer additives on the rheological properties of dipeptide hydrogelators.
Soft Matter, 8(30),
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Raeburn, Jaclyn, Pont, Guillaume, Chen, Lin, Cesbron, Yann, Lévy, Raphaël and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
(2012)
Fmoc-diphenylalanine hydrogels: understanding the variability in reported mechanical properties.
Soft Matter, 8(4),
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Braunmüller, S., Schmid, L., Sackmann, E. and Franke, T. (2012) Hydrodynamic deformation reveals two coupled modes/time scales of red blood cell relaxation. Soft Matter, 8(44), p. 11240. (doi: 10.1039/C2SM26513C)
Hughes, M. et al. (2012) Sequence/structure relationships in aromatic dipeptide hydrogels formed under thermodynamic control by enzyme-assisted self-assembly. Soft Matter, 8(20), pp. 5595-5602. (doi: 10.1039/C2SM25224D)
Adams, L.L.A., Kodger, Thomas E., Kim, Shin-Hyun, Shum, Ho Cheng, Franke, Thomas and Weitz, David A. (2012) Single step emulsification for the generation of multi-component double emulsions. Soft Matter, 8(41), pp. 10719-10724. (doi: 10.1039/C2SM25953B)
Woods, D.A., Mellor, C.D., Taylor, J.M. ORCID: https://orcid.org/0000-0001-7047-1789, Bain, C.D. and Ward, A.D.
(2011)
Nanofluidic networks created and controlled by light.
Soft Matter, 7(6),
pp. 2517-2520.
(doi: 10.1039/C0SM01183E)
Ballester-Beltrán, J., Rico, P., Moratal, D., Song, W., Mano, J.F. and Salmerón-Sánchez, M. ORCID: https://orcid.org/0000-0002-8112-2100
(2011)
Role of superhydrophobicity in the biological activity of fibronectin at the cell–material interface.
Soft Matter, 7(22),
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Chen, L. et al. (2011) Tuneable mechanical properties in low molecular weight gels. Soft Matter, 7(20), pp. 9721-9727. (doi: 10.1039/C1SM05827D)
Guerra, N.B., Gonzalez-Garcia, C., Llopis, V., Rodríguez-Hernández, J.C., Moratal, D., Rico, P. and Salmerón-Sánchez, M. ORCID: https://orcid.org/0000-0002-8112-2100
(2010)
Subtle variations in polymer chemistry modulate substrate stiffness and fibronectin activity.
Soft Matter, 6(19),
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Wyss, Hans M., Franke, Thomas, Mele, Elisa and Weitz, David A. (2010) Capillary micromechanics: measuring the elasticity of microscopic soft objects. Soft Matter, 6(18), pp. 4550-4555. (doi: 10.1039/C003344H)
Butt, H.-J., Barnes, W.J.P., del Campo, A., Kappl, M. and Schönfeld, F. (2010) Capillary forces between soft, elastic spheres. Soft Matter, 6(23), pp. 5930-5936. (doi: 10.1039/C0SM00455C)
Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, Morris, Kyle, Chen, Lin, Serpell, Louise C., Bacsa, John and Day, Graeme M.
(2010)
The delicate balance between gelation and crystallisation: structural and computational investigations.
Soft Matter, 6(17),
pp. 4144-4156.
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Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350 and Topham, Paul D.
(2010)
Peptide conjugate hydrogelators.
Soft Matter, 6(16),
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Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, Mullen, Leanne M., Berta, Marco, Chen, Lin and Frith, William J.
(2010)
Relationship between molecular structure, gelation behaviour and gel properties of Fmoc-dipeptides.
Soft Matter, 6(9),
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Weaver, Jonathan V. M. and Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350
(2010)
Synthesis and application of pH-responsive branched copolymer nanoparticles (PRBNs): a comparison with pH-responsive shell cross-linked micelles.
Soft Matter, 6(12),
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Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, Kitchen, Craig, Adams, Sarah, Furzeland, Steve, Atkins, Derek, Schuetz, Peter, Fernyhough, Christine M., Tzokova, Nadia, Ryan, Anthony J. and Butler, Michael F.
(2009)
On the mechanism of formation of vesicles from poly(ethylene oxide)-block-poly(caprolactone) copolymers.
Soft Matter, 5(16),
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Adams, Dave J. ORCID: https://orcid.org/0000-0002-3176-1350, Butler, Michael F., Frith, William J., Kirkland, Mark, Mullen, Leanne and Sanderson, Paul
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A new method for maintaining homogeneity during liquid–hydrogel transitions using low molecular weight hydrogelators.
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