Publications
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2011. The Tri-Beam System: Femtosecond Laser Based Tomography in a Dual-Beam FIB. Microscopy and Microanalysis. 17:958–959.
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2011. A New Femtosecond Laser-Based Tomography Technique for Multiphase Materials. Advanced Materials. 23:2339–2342.
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2012. A new TriBeam system for three-dimensional multimodal materials analysis. Review of Scientific Instruments. 83:023701.
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2017. Materials response to glancing incidence femtosecond laser ablation. Acta Materialia. 124:46.
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2020. Acquisition of 3D Data for Prediction of Monotonic and Cyclic Properties of Superalloys. Integrated Computational Materials Engineering (ICME): Advancing Computational and Experimental Methods. :1–18.
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2020. Serial sectioning in the SEM for three dimensional materials science. Current Opinion in Solid State and Materials Science. :100817.
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2022. Observations of Damage, Defects, and Structuring in Femtosecond Laser Ablated Surfaces. Microscopy and Microanalysis. 28:872-873.
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2021. Recent Developments in Femtosecond Laser-Enabled TriBeam Systems. JOM. 73:1-12.
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2021. Microstructure-Based Estimation of Strength and Ductility Distributions for α+β Titanium Alloys. Metallurgical and Materials Transactions A.
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2016. Magnetic hardening and antiferromagnetic/ferromagnetic phase coexistence in Mn 1- x Fe x Ru 2 Sn Heusler solid solutions. Physical Review B. 94:094412.
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2015. Three-dimensional multimodal imaging and analysis of biphasic microstructure in a Ti–Ni–Sn thermoelectric material. APL Materials. 3:096107.
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2014. Nanoscale structural heterogeneity in Ni-rich half-Heusler TiNiSn. Journal of Applied Physics. 116:163514.
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2014. Phase stability and property evolution of biphasic Ti–Ni–Sn alloys for use in thermoelectric applications. Journal of Applied Physics. 115:043720.
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2012. Enhanced thermoelectric properties of bulk TiNiSn via formation of a TiNi2Sn second phase. Applied Physics Letters. 101:183902.
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2019. Alloy Design and Processing Design of Magnesium Alloys Using 2nd Phases. JOM. 71:2219–2226.
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2019. New frontiers for the materials genome initiative. npj Computational Materials. 5:1–23.
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2021. Mechanical Metrics of Virtual Polycrystals (MechMet). Integrating Materials and Manufacturing Innovation. 10:1-21.
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2006. Qualitative Characterization of a Thermal Barrier Coating System Using Femtosecond Laser-Induced Breakdown Spectroscopy. MATERIALS SCIENCE AND TECHNOLOGY-ASSOCIATION FOR IRON AND STEEL TECHNOLOGY-. 5:621.
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2008. Detection of a marker layer in a 7YSZ thermal barrier coating by femtosecond laser-induced breakdown spectroscopy. Surface and Coatings Technology. 202:3940–3946.
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2009. Formation of secondary reaction zone in ruthenium bearing nickel based single crystal superalloys with diffusion aluminide coatings. Materials Science and Technology. 25:300–308.
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2008. Femtosecond pulsed laser damage characteristics of 7% Y2O3-ZrO2 thermal barrier coating. Applied Physics A. 91:421–428.
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2009. Femtosecond laser machining of cooling holes in thermal barrier coated CMSX4 superalloy. Journal of Materials Processing Technology. 209:5661–5668.
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2008. Depth-profiling study of a thermal barrier coated superalloy using femtosecond laser-induced breakdown spectroscopy. Spectrochimica Acta Part B: Atomic Spectroscopy. 63:27–36.
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2008. Formation of secondary reaction zones in diffusion aluminide-coated Ni-base single-crystal superalloys containing ruthenium. Metallurgical and Materials Transactions A. 39:1647–1657.
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1996. Effects of high temperature air and vacuum exposures on the room temperature tensile behavior of the (O+ B2) titanium aluminide Ti-22Al-23Nb. Materials Science and Engineering: A. 208:188–202.

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