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Articles 181 - 210 of 322
Full-Text Articles in Materials Science and Engineering
Electropolishing Valve Metals With A Sulfuric Acid-Methanol Electrolyte At Low Temperature, Pete Barnes, Andreas Savva, Kiev Dixon, Hailey Bull, Laura Rill, Devan Karsann, Sterling Croft, Jesse Schimpf, Hui Xiong
Electropolishing Valve Metals With A Sulfuric Acid-Methanol Electrolyte At Low Temperature, Pete Barnes, Andreas Savva, Kiev Dixon, Hailey Bull, Laura Rill, Devan Karsann, Sterling Croft, Jesse Schimpf, Hui Xiong
Materials Science and Engineering Faculty Publications and Presentations
This study reports the electropolishing Ti and Nb metals using a fluoride-free electrolyte of sulfuric acid and methanol at low temperature (-70°C) without prior treatment. A fluoride-free electrolyte provides a less hazardous and more environmentally friendly option for electropolishing procedure. Experimental studies are presented on electropolishing with sulfuric acid electrolyte, which provides high quality macro- and micro-smoothing of the metal surfaces. Optimal conditions yielded leveling and brightening of the surface of Ti and Nb metals beyond that of the currently utilized electropolishing procedures with fluoride-containing electrolytes. The root mean squared roughness (Rq) from atomic force microscopy (AFM) …
The Effects Of Atmospheric Heat Treatments On Tio2 Nanotube Anodes For Lithium-Ion Batteries, Andreas Savva
The Effects Of Atmospheric Heat Treatments On Tio2 Nanotube Anodes For Lithium-Ion Batteries, Andreas Savva
Boise State University Theses and Dissertations
The effects of various heat treatments on the physical and electrochemical properties of anatase TiO2 nanotubes were studied in this work. Well-ordered TiO2 nanotubes were grown via electrochemical anodization and annealed at 450°C to induce a phase transformation to anatase. The heat treatments were conducted under atmospheres of O2, Ar, N2, and water vapor (WV) to create different point defects. The oxygen-deficient atmospheres were used to generate oxygen vacancies in the TiO2 nanotubes, while the water vapor treatment was used to create Ti vacancies by stabilizing them via the protonation of O sites. …
Irradiation Effects On Titanium Dioxide Electrodes For Lithium Ion Batteries, Kassiopeia Ann Smith
Irradiation Effects On Titanium Dioxide Electrodes For Lithium Ion Batteries, Kassiopeia Ann Smith
Boise State University Theses and Dissertations
This dissertation presents the mechanisms of irradiation induced defects and the resulting electrochemical response of TiO2 anode for lithium-ion-batteries. The objective is to realize pathways by which irradiation could be used to enhance the energy density of rechargeable lithium ion batteries in order to provide power to applications under extreme environments. Recent studies suggest that the presence of structural defects (e.g. vacancies and interstitials) in metal oxides may enhance the electrochemical charge storage capacity in electrode materials. One approach to induce defect formation in electrode materials is to use ion irradiation, which has been proven to produce point …
New Methods For Understanding And Controlling The Self-Assembly Of Reacting Systems Using Coarse-Grained Molecular Dynamics, Stephen Thomas
New Methods For Understanding And Controlling The Self-Assembly Of Reacting Systems Using Coarse-Grained Molecular Dynamics, Stephen Thomas
Boise State University Theses and Dissertations
This research aims at developing new computational methods to understand the molecular self-assembly of reacting systems whose complex structures depend on the thermodynamics of mixing, reaction kinetics, and diffusion kinetics. The specific reacting system examined in this study is epoxy, cured with linear chain thermoplastic tougheners whose complex microstructure is known from experiments to affect mechanical properties and to be sensitive to processing conditions. Mesoscale simulation techniques have helped to bridge the length and time scales needed to predict the microstructures of cured epoxies, but the prohibitive computational cost of simulating experimentally relevant system sizes has limited their impact. In …
Improving And Augmenting The Anm Model For Three-Dimensional Virtual Concrete, Stephen Thomas
Improving And Augmenting The Anm Model For Three-Dimensional Virtual Concrete, Stephen Thomas
Boise State University Theses and Dissertations
The Anm model used for creating virtual concrete consisting of irregular shapes has been improved by integrating two existing algorithms: the extent overlap box (EOB) method for detecting contact between two irregular shapes and the uniform thickness shell algorithm. The EOB method has been compared with the previously used Newton-Raphson method and shown to be able to detect inter-particle contact with better accuracy and with less computational cost. Two parameters that define the balance between accuracy and performance of the EOB method have been identified and studied. The uniform thickness shell has been used to specify the minimum inter-particle distance …
Electronic Structure, Pore Size Distribution, And Sorption Characterization Of An Unusual Mof, {[Ni(Dpbz)][Ni(Cn)4]}N, Dpbz = 1,4-Bis(4-Pyridyl)Benzene, Winnie Wong-Ng, Izaak Williamson, Matthew Lawson, Daniel W. Siderus, Jeffrey T. Culp, Yu-S. Chen, Lan Li
Electronic Structure, Pore Size Distribution, And Sorption Characterization Of An Unusual Mof, {[Ni(Dpbz)][Ni(Cn)4]}N, Dpbz = 1,4-Bis(4-Pyridyl)Benzene, Winnie Wong-Ng, Izaak Williamson, Matthew Lawson, Daniel W. Siderus, Jeffrey T. Culp, Yu-S. Chen, Lan Li
Materials Science and Engineering Faculty Publications and Presentations
The monoclinic (Ni(L)[Ni(CN)4] (L= 1,4-Bis(4-pyridyl) benzene) compound (defined as Ni-dpbz) is a flexible metal organic framework which assumes a pillared structure with layers defined by 2D Ni[Ni(CN)4]n nets and dpbz ligands as pillars. The structure features an entrapped dpbz ligand that links between the open ends of four-fold Ni sites from two neighboring chains. This arrangement results in an unusual 5-fold pseudo square-pyramid environment for Ni and a significantly long Ni-N distance of 2.369(4) Å. Using Density Functional Theory calculations, the different bonding characteristics between the 5-fold and 6-fold Ni's were determined. We found that …
The Redshirt In Engineering Consortium: Progress And Early Insights, Janet Callahan, Donna C. Llewellyn, Ann E. Delaney
The Redshirt In Engineering Consortium: Progress And Early Insights, Janet Callahan, Donna C. Llewellyn, Ann E. Delaney
Materials Science and Engineering Faculty Publications and Presentations
The NSF-funded Redshirt in Engineering Consortium was formed in 2016 with the goal of enhancing the ability of academically talented but underprepared students coming from lowincome backgrounds to successfully graduate with engineering degrees. The Consortium takes its name from the practice of redshirting in college athletics, with the idea of providing an extra year and support to help promising engineering students complete a bachelor’s degree. The Consortium builds on the success of three existing “academic redshirt” programs and expands the model to three new schools. The Existing Redshirt Institutions (ERIs) help mentor and train the new Student Success Partners (SSPs), …
Panel Discussion On The History Of The Women In Engineering Division: Reflections From Past Chairs Of The Division, Beena Sukumaran, Janet Callahan, Donna C. Llewellyn, Beth M. Holloway, Noel N. Schulz, Sarah A. Rajala, Donna Reese
Panel Discussion On The History Of The Women In Engineering Division: Reflections From Past Chairs Of The Division, Beena Sukumaran, Janet Callahan, Donna C. Llewellyn, Beth M. Holloway, Noel N. Schulz, Sarah A. Rajala, Donna Reese
Materials Science and Engineering Faculty Publications and Presentations
In celebration of 125 years of the American Society of Engineering Education, past Chairs of the Women in Engineering Division (WIED), Beth Holloway, Donna Llewellyn, Sarah Rajala, and Noel Schulz convened in a focused panel that looked back through the division’s history. To help archive the historical perspective of these leaders, this paper was developed to help the former Chairs focus their perspectives with guiding questions. One additional chair, who could not attend the conference, Donna Reese participated in this paper. The guiding questions for chairs concerned: the influence of their leadership of the WIED on their career, their perspective …
Encouraging A Growth Mindset In Engineering Students, Megan Frary
Encouraging A Growth Mindset In Engineering Students, Megan Frary
Materials Science and Engineering Faculty Publications and Presentations
A person’s “mindset” guides a great deal of how one approaches life -- and especially how students approach education. While someone with a fixed mindset believes that their intelligence is fixed and unchangeable, someone with a growth mindset believes that their intelligence is changeable and can grow as they learn more. Most people’s mindset lies along a spectrum with these two extremes at either end. In addition to other outcomes, the mindset that a person has determines how they interpret mistakes they make; whereas someone with a fixed mindset thinks mistakes result from their innate lack of ability, someone with …
Work In Progress: Flexibility And Professional Preparation Via A Multidisciplinary Engineering Curriculum, Noah Salzman, Vicki Stieha, Amy J. Moll, Joann S. Lighty
Work In Progress: Flexibility And Professional Preparation Via A Multidisciplinary Engineering Curriculum, Noah Salzman, Vicki Stieha, Amy J. Moll, Joann S. Lighty
Materials Science and Engineering Faculty Publications and Presentations
This paper reports on one institution’s work-in-progress to build innovation and creativity into a flexible, ABET accredited undergraduate Engineering B.S. degree that provides a variety of choices to undergraduate engineering students. The new Engineering Plus degree has a core set of required foundational courses in engineering, a multi-year design sequence, and allows for self-defined pathways. The new curriculum also offers three defined degree pathways that have been chosen based on an examination of student “fate” data: secondary education, pre-medical, and environmental studies, with additional pathways planned for the near future. The fate analysis examined the paths of students who were …
Work In Progress: Institutional Context And The Implementation Of The Redshirt In Engineering Model At Six Universities, Ann Delaney, Donna C. Llewellyn, Janet Callahan
Work In Progress: Institutional Context And The Implementation Of The Redshirt In Engineering Model At Six Universities, Ann Delaney, Donna C. Llewellyn, Janet Callahan
Materials Science and Engineering Faculty Publications and Presentations
Low-income students are underrepresented in engineering and are more likely to struggle in engineering programs. Such students may be academically talented and perform well in high school, but may have relatively weak academic preparation for college compared to students who attended better-resourced schools. Four-year engineering and computer science curricula are designed for students who are calculus-ready, but many students who are eager to become engineers or computer scientists need additional time and support to succeed. The NSF-funded Redshirt in Engineering Consortium was formed in 2016 as a collaborative effort to build on the success of three existing “academic Redshirt” programs …
Valuing Women’S Contributions: Team Projects And Collaborative Writing, Jennifer C. Mallette, Harold Ackler
Valuing Women’S Contributions: Team Projects And Collaborative Writing, Jennifer C. Mallette, Harold Ackler
Materials Science and Engineering Faculty Publications and Presentations
Team projects offer opportunities for student engineers to learn how to work on a team and produce collaborative written reports. However, research has shown that women often do more writing during these projects, and that their writing labor is unrecognized or undervalued, particularly when the technical work is viewed as more essential. In this paper, we examine the results of a study focused on the writing component in a year-long senior capstone materials science and engineering (MSE) course sequence. This course requires students to complete projects for clients and produce a written report, among other deliverables. To focus more on …
De-Risking Transdisciplinary Research By Creating Shared Values, Donna C. Llewellyn, William L. Hughes
De-Risking Transdisciplinary Research By Creating Shared Values, Donna C. Llewellyn, William L. Hughes
Materials Science and Engineering Faculty Publications and Presentations
This Lessons Learned Paper describes a yearlong faculty development pilot program that was designed to help a team of faculty de-risk their pursuit of wicked research problems. Wicked problems are extraordinarily difficult to solve due to their incomplete, contradictory, and at times changing requirements. They often include multiple stakeholders with competing interests and worldviews. As a result, they are risky by definition because they are difficult to fund, publish, and collaborate on. Presented here, a team of eleven faculty, from six different academic units, explored their personal and professional values during an initial off-site two and a half day retreat. …
The Crux: Promoting Success In Calculus Ii, Doug Bullock, Janet Callahan, Jocelyn B. S. Cullers
The Crux: Promoting Success In Calculus Ii, Doug Bullock, Janet Callahan, Jocelyn B. S. Cullers
Materials Science and Engineering Faculty Publications and Presentations
In the 2013-14 school year, Boise State University (BSU) launched a major overhaul of Calculus I. The details of the reform, described elsewhere, involved both pedagogical and curricular changes. In subsequent years, we developed several assessment tools to measure the effects of the project on students’ grades and retention. The toolkit includes: (1) pass rate and GPA in Calculus I, (2) longitudinal analysis of pass rates and GPA in subsequent courses, (3) impact of Calculus I on retention in STEM and retention at BSU, (4) all of the above comparing students in reformed Calculus vs traditional Calculus, (5) all of …
Proton Irradiation Effect On Thermoelectric Properties Of Nanostructured N-Type Half-Heusler Hf0.25Zr0.75Nisn0.99Sb0.01, Karthik Chinnathambi, Brian J. Jaques
Proton Irradiation Effect On Thermoelectric Properties Of Nanostructured N-Type Half-Heusler Hf0.25Zr0.75Nisn0.99Sb0.01, Karthik Chinnathambi, Brian J. Jaques
Materials Science and Engineering Faculty Publications and Presentations
Thermoelectric properties of nanostructured half-Heusler Hf0.25Zr0.75NiSn0.99Sb0.01 were characterized before and after 2.5 MeV proton irradiation. A unique high-sensitivity scanning thermal microprobe was used to simultaneously map the irradiation effect on thermal conductivity and Seebeck coefficient with spatial resolution less than 2 μm. The thermal conductivity profile along the depth from the irradiated surface shows excellent agreement with the irradiation-induced damage profile from simulation. The Seebeck coefficient was unaffected while both electrical and thermal conductivities decreased by 24%, resulting in no change in thermoelectric figure of merit ZT. Reductions in thermal and …
Self-Assembly Of (111)-Oriented Tensile-Strained Quantum Dots By Molecular Beam Epitaxy, Christopher F. Schuck, Robin A. Mccown, Ashlie Hush, Austin Mello, Simon Roy, Joseph W. Spinuzzi, Paul J. Simmonds
Self-Assembly Of (111)-Oriented Tensile-Strained Quantum Dots By Molecular Beam Epitaxy, Christopher F. Schuck, Robin A. Mccown, Ashlie Hush, Austin Mello, Simon Roy, Joseph W. Spinuzzi, Paul J. Simmonds
Materials Science and Engineering Faculty Publications and Presentations
The authors report on a comprehensive study of the growth of coherently strained GaAs quantum dots (QDs) on (111) surfaces via the Stranski–Krastanov (SK) self-assembly mechanism. Recent reports indicate that the long-standing challenges, whereby the SK growth mechanism could not be used to synthesize QDs on (111) surfaces, or QDs under tensile strain, have been overcome. However, a systematic study of the SK growth of (111)-oriented, tensile-strained QDs (TSQDs) as a function of molecular beam epitaxy growth parameters is still needed. Here, the authors explore the effects of deposition amount, substrate temperature, growth rate, and V/III flux ratio on the …
Routine Million-Particle Simulations Of Epoxy Curing With Dissipative Particle Dynamics, Stephen Thomas, Monet Alberts, Michael M. Henry, Carla E. Estridge, Eric Jankowski
Routine Million-Particle Simulations Of Epoxy Curing With Dissipative Particle Dynamics, Stephen Thomas, Monet Alberts, Michael M. Henry, Carla E. Estridge, Eric Jankowski
Materials Science and Engineering Faculty Publications and Presentations
Mesoscale simulation techniques have helped to bridge the length scales and time scales needed to predict the microstructures of cured epoxies, but gaps in computational cost and experimental relevance have limited their impact. In this work, we develop an open-source plugin epoxpy for HOOMD-Blue that enables epoxy crosslinking simulations of millions of particles to be routinely performed on a single modern graphics card. We demonstrate the first implementation of custom temperature-time curing profiles with dissipative particle dynamics and show that reaction kinetics depend sensitively on the stochastic bonding rates. We provide guidelines for modeling first-order reaction dynamics in a classic …
Optically Active Dye-Based Systems Templated By Dna Exhibiting Excitonic Delocalization, Brittany Lynn Cannon
Optically Active Dye-Based Systems Templated By Dna Exhibiting Excitonic Delocalization, Brittany Lynn Cannon
Boise State University Theses and Dissertations
The concept of quantum computing was first developed in the early 1980’s. The attraction of quantum computers is their potential capacity to solve extremely complex problems, such as factorization, on a timescale far faster than that of classical computers. However, realization of quantum computation is currently in its infancy, and recent implementations possess serious drawbacks that reduce their appeal. Some challenges of current designs include the necessity to cool the systems using liquid helium to near absolute zero temperatures (15 mK) in order to maintain sufficiently long-lifetimes of the Qbits (i.e., unit of quantum information), difficulty with scaling up the …
Molybdenum Sulfide Prepared By Atomic Layer Deposition: Synthesis And Characterization, Steven Payonk Letourneau
Molybdenum Sulfide Prepared By Atomic Layer Deposition: Synthesis And Characterization, Steven Payonk Letourneau
Boise State University Theses and Dissertations
Molybdenum disulfide (MoS2) is the prototypical two-dimensional (2D) semiconductor. Like graphite, it has a layered structure containing weak van der Waals bonding between layers, while exhibiting strong covalent bonding within layers. The weak secondary bonding allows for isolation of these 2D materials to single layers, like graphene. While bulk MoS2 is an indirect band gap semiconductor with a band gap of ~1.3 eV, monolayer MoS2 exhibits a direct band gap of ~1.8 eV, which is an attractive property for many opto-electronic applications. Atomic layer deposition (ALD) has been used to grow amorphous films of MoS2 …
Redshirt In Engineering: A Model For Improving Equity And Inclusion, Donna C. Llewellyn, Ann Delaney, Janet Callahan
Redshirt In Engineering: A Model For Improving Equity And Inclusion, Donna C. Llewellyn, Ann Delaney, Janet Callahan
Materials Science and Engineering Faculty Publications and Presentations
The NSF-funded Redshirt in Engineering Consortium was formed in 2016 with the goal of enhancing the ability of academically talented but underprepared students coming from low-income backgrounds to successfully graduate with engineering degrees. The Consortium takes its name from the practice of redshirting in college athletics, with the idea of providing an extra year and support to help promising engineering students complete a bachelor’s degree. The Consortium builds on the success of three existing “academic redshirt” programs and expands the model to three new schools. The Existing Redshirt Institutions (ERIs) help mentor and train the new Student Success Partners (SSP), …
Supramolecular Aptamer Nano-Constructs For Receptor-Mediated Targeting And Light-Triggered Release Of Chemotherapeutics Into Cancer Cells, Deepak K. Prusty, Volker Adam, Reza M. Zadegan, Stephan Irsen, Michael Famulok
Supramolecular Aptamer Nano-Constructs For Receptor-Mediated Targeting And Light-Triggered Release Of Chemotherapeutics Into Cancer Cells, Deepak K. Prusty, Volker Adam, Reza M. Zadegan, Stephan Irsen, Michael Famulok
Materials Science and Engineering Faculty Publications and Presentations
Platforms for targeted drug-delivery must simultaneously exhibit serum stability, efficient directed cell internalization, and triggered drug release. Here, using lipid-mediated self-assembly of aptamers, we combine multiple structural motifs into a single nanoconstruct that targets hepatocyte growth factor receptor (cMet). The nanocarrier consists of lipidated versions of a cMet-binding aptamer and a separate lipidated GC-rich DNA hairpin motif loaded with intercalated doxorubicin. Multiple 2′,6′-dimethylazobenzene moieties are incorporated into the doxorubicin-binding motif to trigger the release of the chemotherapeutics by photoisomerization. The lipidated DNA scaffolds self-assemble into spherical hybrid-nanoconstructs that specifically bind cMet. The combined features of the nanocarriers increase serum nuclease …
Atomic Layer Deposition Of Molybdenum Disulfide Films Using Mof6 And H2S, Steven Letourneau, Elton Graugnard
Atomic Layer Deposition Of Molybdenum Disulfide Films Using Mof6 And H2S, Steven Letourneau, Elton Graugnard
Materials Science and Engineering Faculty Publications and Presentations
Molybdenum sulfide films were grown by atomic layer deposition on silicon and fused silica substrates using molybdenum hexafluoride (MoF6) and hydrogen sulfide at 200 °C. In situ quartz crystal microbalance (QCM) measurements confirmed linear growth at 0.46 Å/cycle and self-limiting chemistry for both precursors. Analysis of the QCM step shapes indicated that MoS2 is the reaction product, and this finding is supported by x-ray photoelectron spectroscopy measurements showing that Mo is predominantly in the Mo(IV) state. However, Raman spectroscopy and x-ray diffraction measurements failed to identify crystalline MoS2 in the as-deposited films, and this might result …
Improving The Relative Calculations Of Volta Potential Differences Acquired From Scanning Kelvin Probe Force Microscopy (Skpfm) From Comparing An Inert Material To First-Principle Calculations, C. M. Efaw, T. Da Silva, P. H. Davis, L. Li, E. Graugnard, M. Hurley
Improving The Relative Calculations Of Volta Potential Differences Acquired From Scanning Kelvin Probe Force Microscopy (Skpfm) From Comparing An Inert Material To First-Principle Calculations, C. M. Efaw, T. Da Silva, P. H. Davis, L. Li, E. Graugnard, M. Hurley
Materials Science and Engineering Faculty Publications and Presentations
An improved relative scaling of Volta potential differences (VPD) acquired from scanning Kelvin probe force microscopy (SKPFM) was developed by quantifying the probe work function. In corrosion studies, SKPFM has been used to identify local nobility of complex metallic systems and provide theoretical corrosion initiation sites. However, large variability in measured VPD values for metallic phases has led to controversy in their interpretation. Tracking changes of the probe work function has been shown to decrease the variability seen in SKPFM results. To quantify the work function of SKPFM probes, the measured VPD of an inert gold standard was compared to …
Effects Of The Internal Magnetic Field On The Magneto-Mechanical Properties Of Magnetic Shape Memory Alloys, Anthony Hobza
Effects Of The Internal Magnetic Field On The Magneto-Mechanical Properties Of Magnetic Shape Memory Alloys, Anthony Hobza
Boise State University Theses and Dissertations
Shape memory alloys are a class of functional material which recover from large strains without permanent deformation. The strain is accommodated by the displacement of twin boundaries in the martensite phase. The shape memory alloy Ni-Mn-Ga is also ferromagnetic. Ni-Mn-Ga preferentially magnetizes along a certain crystallographic axis. This direction of easy magnetization changes across twin boundaries, such that the directions in neighboring twin domains are nearly perpendicular.
The interaction of magnetic moments and interfaces including the crystal surface and twin boundary interfaces has a large role in the magnetization process of the material. The goal of this study is to …
Thermodynamics And Kinetics Of Dna Origami Cross-Tile Array Formation, Brett Michael Ward
Thermodynamics And Kinetics Of Dna Origami Cross-Tile Array Formation, Brett Michael Ward
Boise State University Theses and Dissertations
As the cost to continue scaling photolithography to pattern smaller semiconducting devices increases exponentially, new materials and fabrication approaches are being sought to extend and enhance current capabilities. DNA nanostructures have been identified as a promising material for patterning nanoscale devices, and several studies have demonstrated the ability to program DNA nanostructures to self-assemble into large scale arrays. These DNA arrays can be designed to create the patterns necessary for fabricating semiconductor device features. However, these structures are far from ideal and contain a number of defects that limit the adoption of this approach for manufacturing. In order to create …
Detection Of Methylation On Dsdna Using Nanopores In Mos2 Membrane, David Estrada
Detection Of Methylation On Dsdna Using Nanopores In Mos2 Membrane, David Estrada
Materials Science and Engineering Faculty Publications and Presentations
Methylation at the 5-carbon position of the cytosine nucleotide base in DNA has been shown to be a reliable diagnostic biomarker for carcinogenesis. Early detection of methylation and intervention could drastically increase the effectiveness of therapy and reduce the cancer mortality rate. Current methods for detecting methylation involve bisulfite genomic sequencing, which are cumbersome and demand a large sample size of bodily fluids to yield accurate results. Hence, more efficient and cost effective methods are desired. Based on our previous work, we present a novel nanopore-based assay using a nanopore in a MoS2 membrane, and the methyl-binding protein (MBP), …
Amorphous Boron Nanorod As An Anode Material For Lithium-Ion Batteries At Room Temperature, Changjian Deng, Miu Lun Lau, Riley Parrish, Kassiopeia A. Smith, Hui Xiong
Amorphous Boron Nanorod As An Anode Material For Lithium-Ion Batteries At Room Temperature, Changjian Deng, Miu Lun Lau, Riley Parrish, Kassiopeia A. Smith, Hui Xiong
Materials Science and Engineering Faculty Publications and Presentations
We report an amorphous boron nanorod anode material for lithium-ion batteries prepared through smelting non-toxic boron oxide in liquid lithium. Boron in theory can provide capacity as high as 3099 mAh g-1 by alloying with Li to form B4Li5. However, experimental studies of boron anode were rarely reported for room temperature lithium-ion batteries. Among the reported studies the electrochemical activity and cycling performance of bulk crystalline boron anode material are poor at room temperature. In this work, we utilized amorphous nanostructured one-dimensional (1D) boron material aiming at improving the electrochemical reactivity between boron and lithium ions …
Metrology Of Dna Arrays By Super-Resolution Microscopy, Christopher M. Green, Kelly Schutt, Noah Morris, Reza M. Zadegan, William L. Hughes, Wan Kuang, Elton Graugnard
Metrology Of Dna Arrays By Super-Resolution Microscopy, Christopher M. Green, Kelly Schutt, Noah Morris, Reza M. Zadegan, William L. Hughes, Wan Kuang, Elton Graugnard
Materials Science and Engineering Faculty Publications and Presentations
Recent results in the assembly of DNA into structures and arrays with nanoscale features and patterns have opened the possibility of using DNA for sub-10 nm lithographic patterning of semiconductor devices. Super-resolution microscopy is being actively developed for DNA-based imaging and is compatible with inline optical metrology techniques for high volume manufacturing. Here, we combine DNA tile assembly with state-dependent super-resolution microscopy to introduce crystal-PAINT as a novel approach for metrology of DNA arrays. Using this approach, we demonstrate optical imaging and characterization of DNA arrays revealing grain boundaries and the temperature dependence of array quality. For finite arrays, analysis …
Phase Separation In Ti-6al-4v Alloys With Boron Additions For Biomedical Applications: Scanning Kelvin Probe Force Microscopy Investigation Of Microgalvanic Couples And Corrosion Initiation, P. H. Davis, K. Robles, K. Livingston, S. Johns, V. A. Ravi, E. Graugnard, M. F. Hurley
Phase Separation In Ti-6al-4v Alloys With Boron Additions For Biomedical Applications: Scanning Kelvin Probe Force Microscopy Investigation Of Microgalvanic Couples And Corrosion Initiation, P. H. Davis, K. Robles, K. Livingston, S. Johns, V. A. Ravi, E. Graugnard, M. F. Hurley
Materials Science and Engineering Faculty Publications and Presentations
To investigate the effect of boron additions on the corrosion behavior of Ti-6Al-4V for potential use in biomedical implants and devices, cast samples of Ti-6Al-4V were alloyed with 0.01% to 1.09% boron by weight and subjected to hot isostatic pressing. Subsequent analysis via scanning Kelvin probe force microscopy and scanning electron microscopy/energy-dispersive spectroscopy revealed the presence of both alpha (α) and beta (β) phase titanium, enriched in aluminum and vanadium, respectively. At all concentrations, boron additions affected the grain structure and were dispersed throughout both phases, but above the solubility limit, needle-like TiB structures also formed. …
In Situ Tem Micropillar Compression Testing In Irradiated Oxide Dispersion Strengthened Alloys, Kayla Haruko Yano
In Situ Tem Micropillar Compression Testing In Irradiated Oxide Dispersion Strengthened Alloys, Kayla Haruko Yano
Boise State University Theses and Dissertations
The objective of this study is to determine the validity of in situ transmission electron microscopy (TEM) micro-compression of pillars in as received and ion-irradiated Fe-9%Cr oxide dispersion strengthened (ODS) alloy. The growing role of charged particle irradiation in the evaluation of nuclear reactor candidate materials requires the development of novel methods to assess mechanical properties in near-surface irradiation damage layers just a few micrometers thick. In situ TEM mechanical testing is one such promising method, yet size effects must be understood to validate the technique. In this work, a micro-compression pillar fabrication method is developed. Yield strengths measured directly …