Engineering topics
Hill, Caleb M.
Publications and source records attributed to Hill, Caleb M..
Ligand-Assisted Separation of Rare Earth Elements via Capillary Electrophoresis
Rare earth elements (REEs) are a class of critical materials vital in applications such as EVs, batteries, and defense weapons systems. These elements are found primarily in ores, and due to their similar chemical behavior, the challenge remains to find an effective means of separation. The addition of ligands of varying charge, size, denticity, etc. can help to increase separation, yet the mechanistic behavior and factors influencing separation are still poorly understood. Here, iminodiacetic acid (IDA) is used to exploit and maximize differences in electrophoretic mobilities between adjacent REEs. Mobilities and diffusion coefficients of REEs in aqueous media are measured via CE and are compared to MD and FEM simulations.
Methods and systems for analysis
Provided herein are systems and methods for the detection, quantification, and/or monitoring of analytes in samples. The systems and methods can be used, for example, to track the deposition and electrochemical behavior of individual nanoparticles and nanoparticles clusters clusters in situ with high spatial and temporal resolution. The systems and methods can be used to track the deposition and oxidation of several hundreds to thousands of nanoparticles simultaneously and reconstruct their voltammetric curves at the single nanoparticle level.
Layer and material-type dependent photoresponse in Se 2 /WS 2 vertical heterostructures
Transition metal dichalcogenide (TMD) heterostructures are promising for a variety of applications in photovoltaics and photosensing. Successfully exploiting these heterostructures will require an understanding of their layer-dependent electronic structures. However, there is no experimental data demonstrating the layer-number dependence of photovoltaic effects (PVEs) in vertical TMD heterojunctions. Here, by combining scanning electrochemical cell microscopy (SECCM) with optical probes, we report the first layer-dependence of photocurrents in WSe 2 /WS 2 vertical heterostructures as well as in pristine WS 2 and WSe 2 layers. For WS 2 , we find that photocurrents increase with increasing layer thickness, whereas for WSe 2 the layer dependence is more complex and depends on both the layer number and applied bias (V b ). Further, we find that photocurrents in the WSe 2 /WS 2 heterostructures exhibit anomalous layer and material-type dependent behaviors. Our results advance the understanding of photoresponse in atomically thin WSe 2 /WS 2 heterostructures and pave the way to novel nanoelectronic and optoelectronic devices.