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Biomedical subjects

J Erlebacher

Publications and source records attributed to J Erlebacher.

10 recordsLinked to original sources

Length scales in alloy dissolution and measurement of absolute interfacial free energy.

De-alloying is the selective dissolution of one or more of the elemental components of an alloy. In binary alloys that exhibit complete solid solubility, de-alloying of the less noble component results in the formation of nanoporous metals, a materials class that has attracted attention for applications such as catalysis, sensing and actuation. In addition, the occurrence of de-alloying in metallic alloy systems under stress is known to result in stress-corrosion cracking, a key failure mechanism in fossil fuel and nuclear plants, ageing aircraft, and also an important concern in the design of nuclear-waste storage containers. Central to the design of corrosion-resistant alloys is the identification of a composition-dependent electrochemical critical potential, Vcrit, above which the current rises dramatically with potential, signalling the onset of bulk de-alloying. Below Vcrit, the surface is passivated by the accumulation of up to several monolayers of the more noble component. The current understanding of the processes that control Vcrit is incomplete. Here, we report on de-alloying results of Ag/Au superlattices that clarify the role of pre-existing length scales in alloy dissolution. Our data motivated us to re-analyse existing data on critical potentials of Ag-Au alloys and develop a simple unifying picture that accounts for the compositional dependence of solid-solution alloy critical potentials.

Journal Article↗

Volume change during the formation of nanoporous gold by dealloying.

We report a macroscopic shrinkage by up to 30 vol % during electrochemical dealloying of Ag-Au. Since the original crystal lattice is maintained during the process, we suggest that the formation of nanoporous gold in our experiments is accompanied by the creation of a large number of lattice defects and by local plastic deformation.

Journal Article↗

Evolution of nanoporosity in dealloying.

Dealloying is a common corrosion process during which an alloy is 'parted' by the selective dissolution of the most electrochemically active of its elements. This process results in the formation of a nanoporous sponge composed almost entirely of the more noble alloy constituents. Although considerable attention has been devoted to the morphological aspects of the dealloying process, its underlying physical mechanism has remained unclear. Here we propose a continuum model that is fully consistent with experiments and theoretical simulations of alloy dissolution, and demonstrate that nanoporosity in metals is due to an intrinsic dynamical pattern formation process. That is, pores form because the more noble atoms are chemically driven to aggregate into two-dimensional clusters by a phase separation process (spinodal decomposition) at the solid-electrolyte interface, and the surface area continuously increases owing to etching. Together, these processes evolve porosity with a characteristic length scale predicted by our continuum model. We expect that chemically tailored nanoporous gold made by dealloying Ag-Au should be suitable for sensor applications, particularly in a biomaterials context.

Journal Article↗

Nonclassical smoothening of nanoscale surface corrugations.

We report the first experimental observation of nonclassical morphological equilibration of a corrugated crystalline surface. Periodic rippled structures with wavelengths of 290-550 nm were made on Si(001) by sputter rippling and then annealed at 650-750 degrees C. In contrast to the classical exponential decay with time, the ripple amplitude Alambda(t) followed an inverse linear decay, Alambda(t)=Alambda(0)/(1+klambdat), agreeing with a prediction of Ozdemir and Zangwill. We measure the activation energy for surface relaxation to be 1.6+/-0.2 eV, consistent with the fundamental energies of creation and migration on Si(001).

Journal Article↗

The crystal and molecular structure of ellagic acid dihydrate: a dietary anti-cancer agent.

The crystal and molecular structure of ellagic acid dihydrate has been determined by X-ray diffraction techniques. This acid inhibits the carcinogenic properties of a variety of chemical compounds including benzo[alpha]pyrene-7,8-diol-9,10-epoxide, aflatoxin B1, N-methyl-N-nitrosourea, 3-methyl-cholanthrene and 7,12-dimethylbenz[alpha]anthracene. Ellagic acid dihydrate forms triclinic crystals with unit cell dimensions: a = 7.656(1) A, b = 9.563(1)A, c = 4.623(1) A, alpha = 97.88(1) degrees, beta = 103.2(1) degrees, gamma = 102.22(1) degrees, V = 315.9 A3, space group = P1. There is a center of symmetry in the crystal coinciding with the center of the molecule, so that there is only one molecule in the unit cell. Ellagic acid is planar and molecules are interconnected by hydrogen bonds to water, giving rise to layers of molecules throughout the crystal. Its activity and anti-cancer properties are compared with those of a similar naturally occurring compound, quercetin.

Antineoplastic Agents↗