SEM PicoIndenter Series

Hysitron PI 89

Robust, precise, and modular in-situ SEM nanomechanical test instrument

Hysitron PI 89 SEM PicoIndenter

The Hysitron PI 89 SEM PicoIndenter leverages the advanced imaging capabilities of scanning electron microscopes (SEM, FIBSEM, PFIB), making it possible to perform quantitative nanomechanical testing while simultaneously imaging. PI 89 further advances Bruker's market-leading capacitive transducer technology, which enabled the first commercial in-situ SEM nanomechanics platforms. The new PI 89 Auto adds full automation to four techniques: EBSD, EDS, SEM imaging, and mechanical property mapping.

 

Techniques available on PI 89 include nanoindentation, tensile testing, pillar compression, particle compression, cantilever bending, fracture, fatigue, dynamic testing, and mechanical properties mapping.

Unmatched
control and performance
Provides intrinsic displacement actuation and displacement control from <1 nm to 30 µm and <1 nm to 150 µm, industry-leading load range from <1 µN to 3.5 N, and 78 kHz feedback rate and data acquisition up to 39 kHz to capture transient events.
Innovative
stage technology
Enables precise sample positioning with encoded linear and two configurations of encoded rotation and tilt stages for reliable and repeatable testing, property mapping, in-situ FIB milling, and analytical imaging with EBSD, EDS, BSE, and TKD detectors.
Versatile
modular design
Supports a full suite of in-situ testing techniques and options including elevated temperature (>1000oC), cryogenic temperature, nanoTribology, electrical characterization module, nanoDynamic, Push-to-Pull (PTP), direct-pull tension, Electrical Push-to-Pull (EPTP), high strain rate, and scanning probe microscopy imaging.
Features

Advanced Performance and Functionality

The compact design of Hysitron PI 89 allows for maximum stage tilt and minimum working distance to enable optimal imaging during testing. PI 89 offers researchers greater versatility and performance than competing systems:

  • Redesigned platform increases versatility and ease of use 
  • 1 nm encoded linear stages provide greater repeatability during automated testing modes while increasing travel range
  • Improved frame stiffness (~0.9 x 106 N/m) delivers greater stability throughout the testing process
  • Rotation and tilt (RT) stage configurations enable imaging, FIB milling, and access to detectors, such as EDS, CBD, EBSD, and TKD for analytical data and imaging
Two rotation/tilt stage configurations available with next-generation system design. A simple sliding stage added to the system allows quick and simple adjustment of the sample position relative to the transducer.

True Displacement Control

Fine load drops in true-displacement control test with SEM PicoIndenter. Rate limiting deformation mechanisms of bcc metals in confined volumes. Acta Materialia, Volume 166, March 2019, p. 687-701, 2019

Hysitron PI 89 utilizes Bruker’s proprietary sub-nanometer sensitivity transducer and piezo-driven flexure for intrinsically displacement-controlled and load-controlled tests:

  • In intrinsically displacement-control mode, the piezo actuator can apply displacement with a predetermined displacement rate, and the transducer measures the force
  • In true load-control mode, the transducer can apply force electrostatically while simultaneously measuring displacement capacitively
  • The uniquely low-current design of the transducer minimizes thermal drift and provides unprecedented load and displacement sensitivity

In-Situ Mechanical Data Synchronized with SEM Imaging and Analytical Mapping

Video capture from the SEM enables real-time monitoring and direct correlation of mechanical data to microscope imaging. Samples were provided courtesy of Professor Steven Nutt, University of Southern California.

In-situ mechanical data acquired with the Hysitron PI 89 are synchronized with SEM imaging and displayed side-by-side. This allows you to see the influence of defects, mechanical strain, and thermal or electrical stimuli on the performance, lifetime, and durability of engineered materials—from nanometer-to-micrometer scales. This synchronization enables a greater range of analyses:

  • The rotation and tilt stages of the SEM offer a combination of EBSD and mechanical property mapping of samples
  • FIB milling can be performed on a sample before and after nanomechanical testing, without venting a chamber
     

Automated Co-Localized Imaging and Analysis for High-Throughput In-Situ Nanoindentation

Bruker's new Hysitron PI 89 Auto SEM PicoIndenter enables full automation of four techniques: EBSD, EDS, SEM imaging, and mechanical property mapping.

PI 89 Auto SEM PicoIndenter

Customizable for your research.

Something about upgrades and add-ons; reference PI Cryo and both advanced flexure options. Invitation to contact expert to discuss specific measurement requirements and needs.

UPGRADE OPTIONS AND ADD-ONS

Expand PI 89's Capabilities

Webinars

Watch our Recent Broadcasts on Nanomechanics in SEM

Our webinars cover best practices, introduce new products, provide quick solutions to tricky questions, and offer ideas for new applications, modes or techniques.

More Information

Find Out More About the Hysitron PI 89 SEM PicoIndenter

Key Publications with SEM

2024
  • Aleman, Angel, Hicham Zaid, Koichi Tanaka, Jenn-Ming Yang, Suneel Kodambaka, and Hanna Kindlund. 2024. “Unusual Secondary Slip Activity at Room Temperature in VC Single Crystals.” Materials & Design 244 (August): 113195. https://doi.org/10.1016/j.matdes.2024.113195.
  • An, Qi, Zhe Yan, Lichen Bai, and Shijian Zheng. 2024. “Achieving Superior Matching of Strength, Plasticity, and Strain Hardening in Multilayers by Introducing Metastable Amorphous Interface Phase.” Scripta Materialia 252 (November): 116258. https://doi.org/10.1016/j.scriptamat.2024.116258.
  • Bignoli, Francesco, Philippe Djemia, Giancarlo Terraneo, Gregory Abadias, Christoph Gammer, Alice Lassnig, Camila A. Teixeira, et al. 2024. “Novel Class of Crystal/Glass Ultrafine Nanolaminates with Large and Tunable Mechanical Properties.” ACS Applied Materials & Interfaces 16 (27): 35686–96. https://doi.org/10.1021/acsami.4c02610.
  • Bijun Xie, Hangman Chen, Pengfei Wang, Cheng Zhang, Bin Xing, Mingjie Xu, Xin Wang, Lorenzo Valdevit, Julian Rimoli, Xiaoqing Pan, Penghui Cao. 2024. “Divergent Evolution of Slip Banding in Alloys.”
  • Cao, Qingping, Nan Wang, Jae-Moo Kim, Arnaud Caron, Zhipeng Zhang, Haofei Zhou, Xiaodong Wang, Shaoqing Ding, Dongxian Zhang, and Jian-Zhong Jiang. 2024. “A Dual-Phase Fe-Co-Ni-Cr-Mn High Entropy Alloy Thin Film with Superior Strength and Corrosion-Resistance.” Journal of Alloys and Compounds 1003 (October): 175551. https://doi.org/10.1016/j.jallcom.2024.175551.
  • Dabney, Tyler Alexander. 2024. “Development of Cold Spray Cr Coatings on Zr-Alloy for Advanced Nuclear Fuel Cladding.”
  • Duan, Fenghui, Qian Li, Zhihao Jiang, Lin Zhou, Junhua Luan, Zheling Shen, Weihua Zhou, et al. 2024. “An Order-Disorder Core-Shell Strategy for Enhanced Work-Hardening Capability and Ductility in Nanostructured Alloys.” Nature Communications 15 (1): 6832. https://doi.org/10.1038/s41467-024-50984-9.
  • Flamourakis, George, IOANNIS SPANOS, Zacharias Vangelatos, Costas Grigoropoulos, Anthi Ranella, and Maria Farsari. 2024. “Laser-Made Mechanical Metamaterials: Towards the Development of 4D Scaffolds for Cell Growth.” In Nanoscale and Quantum Materials: From Synthesis and Laser Processing to Applications 2024, edited by Andrei v. Kabashin, Maria Farsari, and Masoud Mahjouri-Samani, 11. SPIE. https://doi.org/10.1117/12.3004008.
  • Gasper, C., I. Y. Gao, F. A. Busch, A. Ziemons, D. Beckers, H. Springer, and S. Korte-Kerzel. 2024. “Preparation of Binary and Ternary Laves and Μ-Phases in the Ta–Fe(–Al) System for Property Analysis at the Microscale.” Metallurgical and Materials Transactions A 55 (7): 2244–63. https://doi.org/10.1007/s11661-024-07390-z.
  • Ghodki, Nandita, Shristy Jha, Siva Shankar Alla, Yu-Chia Yang, George M. Pharr, and Sundeep Mukherjee. 2024. “Deformation Behavior of Thermally Rejuvenated Zr-Cu-Al-(Ti) Bulk Metallic Glass.” Scientific Reports 14 (1): 20729. https://doi.org/10.1038/s41598-024-71658-y.
  • Gunjal, Vilas, Chandra Sekhar Tiwary, Kamanio Chattopadhyay, and Dipankar Banerjee. 2024. “Intermetallic Eutectics with Gigapascal Strength and Enhanced Ductility.” Intermetallics 168. https://doi.org/10.1016/j.intermet.2024.108228.
  • Ha, Sangyul, Saif Haider Kayani, Kyungjun Lee, Suwon Park, Hyunjoo Choi, Jae Bok Seol, Jung Gi Kim, and Hyokyung Sung. 2024. “Microscopic-Plastic Deformation Behavior of Grain Boundary Precipitates in an Al–Zn–Mg Alloy.” Journal of Materials Research and Technology 30 (May): 3420–29. https://doi.org/10.1016/j.jmrt.2024.04.044.
  • Hazendonk, Laura S. van, Zafeiris J. Khalil, Wilko van Grondelle, Levina E. A. Wijkhuijs, Ingeborg Schreur-Piet, Michael G. Debije, and Heiner Friedrich. 2024. “Hot Fingers: Individually Addressable Graphene-Heater Actuated Liquid Crystal Grippers.” ACS Applied Materials & Interfaces 16 (25): 32739–47. https://doi.org/10.1021/acsami.4c06130.
  • Hong, Jong-Dae, Hongryul Oh, Daehyeok Ahn, Dongchan Jang, Hyun-Gil Kim, JaeYong Kim, Hyochan Kim, and Martin Ševeček. 2024. “Micro-Mechanical Evaluations of Adhesion Properties for Cr-Coated Accident Tolerant Fuel Cladding.” Nuclear Materials and Energy 41 (December): 101799. https://doi.org/10.1016/j.nme.2024.101799.
  • Horbach, Lutz, Jiali Zhang, Tobias Sedlatschek, Felix Weber, Christian Gebhardt, Betto David Joseph, Andreas Bührig-Polaczek, and Christoph Broeckmann. 2024. “The Effect of Silicon on the Critical Resolved Shear Stress of Solid Solution Strengthened Ferritic Ductile Iron.” Materials & Design 244 (August): 113130. https://doi.org/10.1016/j.matdes.2024.113130.
  • Hou, Jingkun, Xianzhang Wu, Zhihan Li, Xingchi Li, Yu Liao, Lei Li, Sha Luo, Yiqiang Wu, and Yan Qing. 2024. “Aligned Bamboo Fiber‐Induced Crystallinity Mitigation of Lightweight Polymer Composite Enables Ultrahigh Strength and Unprecedented Toughness.” Advanced Functional Materials 34 (27). https://doi.org/10.1002/adfm.202314559.
  • Hu, C., Y.X. Liu, B.B. He, and M.X. Huang. 2025. “Role of Intermetallic Networks in Developing High-Performance Austenitic Steel.” Acta Materialia 283 (January): 120494. https://doi.org/10.1016/j.actamat.2024.120494.
  • Jang, Dongchan, Woosuk Seo, Daehyeok Ahn, Hadi Ghaffarian, Tae-Ho Lee, Eun-Soo Park, Keumhwan Park, and Yongjo Kim. 2024. “Design and Fabrication of Highly Elastic and Largely Deformable Nanolaminate Amorphous-Crystalline Metallic Electrodes for Deformable Displays.” https://doi.org/10.21203/rs.3.rs-4539893/v1.
  • Janknecht, Rebecca, Rainer Hahn, Nikola Koutná, Tomasz Wójcik, Eleni Ntemou, Andreas Steiger-Thirsfeld, Zhuo Chen, et al. 2024. “A Strategy to Enhance the B-Solubility and Mechanical Properties of Ti–B–N Thin Films.” Acta Materialia 271 (June): 119858. https://doi.org/10.1016/j.actamat.2024.119858.
  • Jha, Shristy, Siva Shankar Alla, Sanjit Bhowmick, and Sundeep Mukherjee. 2025. “Temperature Dependent Small-Scale Deformation of a Refractory High Entropy Alloy.” Materials Letters 379 (January): 137649. https://doi.org/10.1016/j.matlet.2024.137649.
  • Kakaraparty, Karthik, Erik A. Pineda, Baylee Schumacher, Russell C. Reid, and Ifana Mahbub. 2024. “Advanced Bias-Free Energy Harvesting Based on High-Dielectric Flexible Electrodes with Reverse Electrowetting-on-Dielectric.” IEEE Sensors Journal 24 (7). https://doi.org/10.1109/JSEN.2023.3345841.
  • Kim, Ho A., Ju Seong Kim, Yundong Lee, Sangbum Kim, Youho Lee, Yong Soo Kim, Joo Hee Kang, and Sangtae Kim. 2024. “Microstructure and Mechanical Properties of Hydride Blisters Formed on Zircaloy-4 Claddings.” Journal of Nuclear Materials 588. https://doi.org/10.1016/j.jnucmat.2023.154777.
  • Lam, S., D. Frazer, F. Cappia, M. Nelson, S. Samuha, S. Pitts, B. Harris, and P. Hosemann. 2025. “Length Scale Effects of Micro- and Meso‑scale Tensile Tests of Unirradiated and Irradiated Zircaloy-4 Cladding.” Journal of Nuclear Materials 604 (January): 155469. https://doi.org/10.1016/j.jnucmat.2024.155469.
  • Lee, Do Hoon, Taesu Lim, Jeongsu Pyeon, Hyunmin Park, Sang‐Won Lee, Seungkyu Lee, Wonsik Kim, et al. 2024. “Self‐Mixed Biphasic Liquid Metal Composite with Ultra‐High Stretchability and Strain‐Insensitivity for Neuromorphic Circuits.” Advanced Materials 36 (16). https://doi.org/10.1002/adma.202310956.
  • Lehnert, R., V. Remich, G. Gerstein, M. Motylenko, M. Müller, P. Krooß, T. Niendorf, H. Biermann, and A. Weidner. 2024. “Unraveling Factors Affecting the Reversibility of Martensitic Phase Transformation in FeNiCoAlTi Shape Memory Alloys: Insights from HR-EBSD and Acoustic Emission Analysis.” Acta Materialia 276 (September): 120146. https://doi.org/10.1016/j.actamat.2024.120146.
  • Leide, Alex, Eric Hintsala, Mark Davies, David T. Goddard, and Dong Liu. 2024. “Micromechanical Properties of TRISO Coatings by In-Situ High Temperature Nanoindentation and Microcantilever Fracture.” Journal of the European Ceramic Society 44 (5). https://doi.org/10.1016/j.jeurceramsoc.2023.12.056.
  • Li, Bo, and Xiaolong Song. 2024. “Structural Evolution and Micromechanical Property of Amorphous Carbon Particles during Arc Plasma Synthesis.” Materials Letters 372 (October): 137106. https://doi.org/10.1016/j.matlet.2024.137106.
  • Li, Lu, Xiali Zhen, Ruixiao Zheng, Chaoli Ma, and Cuiyun Liu. 2024. “Further Understanding of the Improved Mechanical Properties for SiCf/BN/SiC Composites Prepared by CVI+PIP Hybrid Technique: Application of Micro-Mechanical Methods.” Composites Part B: Engineering 283 (August): 111633. https://doi.org/10.1016/j.compositesb.2024.111633.
  • Li, Weiming, Lichen Bai, Kaisheng Ming, and Shijian Zheng. 2024. “Plasticity Dependence on Amorphous Continuity in Fe‐SiOC Dual‐phase Nanocomposites.” Journal of Materials Science and Technology. https://doi.org/10.1016/j.jmst.2023.08.005.
  • Li, Yanxiao, Congjie Wei, Steven E. Kooi, David Veysset, Chuanrui Guo, Yuxiang Gan, Ying Zhuo, et al. 2024. “Tough Monolayer Silver Nanowire-Reinforced Double-Layer Graphene.” ACS Applied Materials & Interfaces, October. https://doi.org/10.1021/acsami.4c04768.
  • Liang, Zhao, and Eugen Rabkin. 2024. “The Effect of Composition and Long-Range Order on the Strength of Defect-Free Faceted Cu-Au Nanoparticles.” Acta Materialia 266. https://doi.org/10.1016/j.actamat.2024.119680.
  • Liu, Chang, Jing Rao, Zhongji Sun, Wenjun Lu, James P. Best, Xuehan Li, Wenzhen Xia, et al. 2024. “Near-Theoretical Strength and Deformation Stabilization Achieved via Grain Boundary Segregation and Nano-Clustering of Solutes.” Nature Communications 15 (1): 9283. https://doi.org/10.1038/s41467-024-53349-4.
  • Liu, Shirong, Jingui Ai, Yueqi Zhang, and Jicheng Feng. 2024. “Programmable and Parallel 3D Nanoprinting Using Configured Electric Fields.” Advanced Functional Materials 34 (13). https://doi.org/10.1002/adfm.202308734.
  • Luo, W., C. Gasper, S. Zhang, P.L. Sun, N. Ulumuddin, A. Petrova, Y. Lysogorskiy, R. Drautz, Z. Xie, and S. Korte-Kerzel. 2024. “Non-Basal Plasticity in the μ-Phase at Room Temperature.” Acta Materialia 277 (September): 120202. https://doi.org/10.1016/j.actamat.2024.120202.
  • Moon, Jaron v., Md Takmil Sakir, Wooseok Go, Rui Xie, Michael C. Tucker, Marca Doeff, Haoran Wang, and Roseanne Warren. 2024. “Microscale Mechanical Property Variations of Al-Substituted LLZO: Insights from Compression Testing and Molecular Dynamics Simulations.” Journal of Materials Chemistry A 12 (37): 24886–95. https://doi.org/10.1039/D4TA03596H.
  • Musiienko, Denys, Jaromír Kopeček, Ross H. Colman, Kari Ullakko, and Oleg Heczko. 2024. “Increase of Twinning Stress in Single Crystalline Ni-Mn-Ga Micropillars.” Materialia 33. https://doi.org/10.1016/j.mtla.2023.101988.
  • Pan, Bo, Hui Sun, Dongyue Xie, Shun Li Shang, Nan Li, Blair E. Carlson, Yumeng Li, Zi Kui Liu, and Jingjing Li. 2024. “Influence of Accelerated Corrosion on Al/Steel RSW Joints by in Situ Compression Tests.” Materials Science and Engineering: A 889. https://doi.org/10.1016/j.msea.2023.145851.
  • Paul, Tanaji, Tyler Dolmetsch, Lihua Lou, and Arvind Agarwal. 2024. “Frictional Resistance and Delamination Mechanisms in 2D Tungsten Diselenide Revealed by Multi-Scale Scratch and in-Situ Observations.” Nanotechnology 35 (39): 395703. https://doi.org/10.1088/1361-6528/ad5dbe.
  • Pena, Miguel, Yongchang Li, Zhihan Hu, Kenneth Cooper, Laura Hawkins, Di Chen, Frank A. Garner, and Lin Shao. 2024. “Micro-Pillar Compression of Proton-Irradiated Chromium Examined Using Cross-Sectional Site Selection, Electron Microscopy, and Molecular Dynamics Simulation.” Journal of Nuclear Materials 600 (November): 155299. https://doi.org/10.1016/j.jnucmat.2024.155299.
  • Peng, Hui Wen, and Chun Hway Hsueh. 2024. “Effects of Silicon and Neodymium Additions on Microstructures and Mechanical Properties of CoCrNi Medium Entropy Alloy Films.” Surface and Coatings Technology 476. https://doi.org/10.1016/j.surfcoat.2023.130206.
  • Prasitthipayong, A., D.M. Frazer, R. Zhang, H.T. Vo, S.J. Tumey, A.M. Minor, and P. Hosemann. 2024a. “Sample Size Effect Phenomenon in Microcompression Testing of Unirradiated and Ion-Irradiated 800H Steel at High Temperatures.” Materials Characterization 215 (September): 114046. https://doi.org/10.1016/j.matchar.2024.114046.
  • 2024b. “Sample Size Effect Phenomenon in Microcompression Testing of Unirradiated and Ion-Irradiated 800H Steel at High Temperatures.” Materials Characterization 215 (September): 114046. https://doi.org/10.1016/j.matchar.2024.114046.
  • Puttbach, C., G.S. Prinz, and C.D. Murray. 2024. “Strength and Stiffness Characterization of Ultra-High Performance Concrete (UHPC) Cement Paste Phases through in-Situ Micro-Mechanical Testing.” Cement and Concrete Composites 149 (May): 105520. https://doi.org/10.1016/j.cemconcomp.2024.105520.
  • Rivera, Charles. 2024. “Development of a Thermal Micro Tensile Testing Technique for Select Layer Interfaces of TRISO Particles.”
  • Robinson, Accalia, Eric Hintsala, Eric  R. Homer, and Gregory B. Thompson. 2024. “Temperature Dependent Twin Stability in Nanocrystalline Cu(Al) Under In-Situ Cryogenic Pillar Compression.” https://doi.org/10.2139/ssrn.4902256.
  • Schmalbach, Kevin M, Justin Y Cheng, Eric D Hintsala, Nathan A Mara, Douglas D Stauffer, and Sanjit Bhowmick. 2024. “Accelerated Microstructure-Mechanical Property Mapping of Multi-Component Structural Materials.” Microscopy and Microanalysis 30 (Supplement_1). https://doi.org/10.1093/mam/ozae044.278.
  • Schmuck, K., M. Antenreiter, M. Alfreider, and D. Kiener. 2024. “Automatic and Time-Resolved Determination of Fracture Characteristics from in Situ Experiments.” Materials & Design 243 (July): 113038. https://doi.org/10.1016/j.matdes.2024.113038.
  • Scorza, Daniela, Andrea Carpinteri, Camilla Ronchei, Andrea Zanichelli, Sabrina Vantadori, and Raimondo Lucian. 2024. “A Nonlocal Elasticity Theory to Model the Static Behaviour of Edge-Cracked Nanobeams.” Frattura Ed Integrita Strutturale 18 (67). https://doi.org/10.3221/IGF-ESIS.67.20.
  • Shah, Sohail, Cameron Howard, Boopathy Kombaiah, Sriswaroop Dasari, Fei Teng, Yachun Wang, Jason Daniel, and Mukesh Bachhav. 2024. “Correlating Microstructure and Mechanical Properties of Harvested High Dose Zorita Light Water Reactor Internals.” Journal of Nuclear Materials 599 (October): 155241. https://doi.org/10.1016/j.jnucmat.2024.155241.
  • Shang, Anyu, Benjamin Stegman, Kenyi Choy, Tongjun Niu, Chao Shen, Zhongxia Shang, Xuanyu Sheng, et al. 2024. “Additive Manufacturing of an Ultrastrong, Deformable Al Alloy with Nanoscale Intermetallics.” Nature Communications 15 (1): 5122. https://doi.org/10.1038/s41467-024-48693-4.
  • Shen, Chao, Jin Li, Tongjun Niu, Jaehun Cho, Zhongxia Shang, Yifan Zhang, Anyu Shang, et al. 2024. “Achieving Room Temperature Plasticity in Brittle Ceramics through Elevated Temperature Preloading.” Science Advances 10 (16). https://doi.org/10.1126/sciadv.adj4079.
  • Shen, Chao, Tongjun Niu, Jaehun Cho, Tianyi Sun, Anyu Shang, Yifan Zhang, Haiyan Wang, and Xinghang Zhang. 2024. “In Situ Studies on Temperature‐dependent Deformation Mechanisms of Al 2 O 3 Prepared by Spark Plasma Sintering.” Journal of the American Ceramic Society, June. https://doi.org/10.1111/jace.19964.
  • Sperling, S.O., T. Bertens, J.P.M. Hoefnagels, K. van den Broek, and M.G.D. Geers. 2024. “Experimental–Numerical Analysis of Silicon Micro-Scratching.” International Journal of Solids and Structures 295 (June): 112809. https://doi.org/10.1016/j.ijsolstr.2024.112809.
  • Sun, Tianyi, Tongjun Niu, Zhongxia Shang, Chao Shen, Dongyue Xie, Jian Wang, Haiyan Wang, and Xinghang Zhang. 2024. “High‐Temperature Mechanical Behavior of Single‐Crystal FeCrAl Alloy Under In Situ Micropillar Compression.” Advanced Engineering Materials 26 (21). https://doi.org/10.1002/adem.202400820.
  • Supakul, Skye. 2024. “Metal/MAX Phase Multilayered Nanolaminates for Tunable Strength and Toughness: Synthesis, Microstructure, and Mechanical Properties.”
  • Supakul, Skye, Manish Jain, Krishna Yaddanapudi, Jacob Gruber, Osman El-Atwani, Garritt J. Tucker, and Siddhartha Pathak. 2024. “Synthesis, Microstructure and Micro-Mechanical Characterization of Metal (Nb, Ti) – MAX Phase (Ti2AlC) Nanolaminates.” Materials Science and Engineering: A 910 (September): 146905. https://doi.org/10.1016/j.msea.2024.146905.
  • Teixeira, Camila Aguiar, Subin Lee, and Christoph Kirchlechner. 2024. “Measuring the Twinning Stress at the Micron Scale: A Comprehensive Comparison of Testing Geometries.” Materials Characterization 217 (November): 114314. https://doi.org/10.1016/j.matchar.2024.114314.
  • Varillas, Javier, Jaroslav Lukeš, Anastasios Manikas, Jan Maňák, Jiří Dluhoš, Zuzana Melníková, Martin Kalbáč, Costas Galiotis, and Otakar Frank. 2024. “Mechanical Response of Monolayer Graphene via a Multi-Probe Approach.” International Journal of Mechanical Sciences 273 (July): 109208. https://doi.org/10.1016/j.ijmecsci.2024.109208.
  • Wang, Bokang, Tanglong Bai, Weide Wang, and Hongti Zhang. 2024. “Mechanical Properties of Silicon Nitride in Different Morphologies: In Situ Experimental Analysis of Bulk and Whisker Structures.” Materials 17 (18): 4549. https://doi.org/10.3390/ma17184549.
  • Wang, Congying, Xuwei Cui, Shijun Wang, Wenlong Dong, Hai Hu, Xiaoyong Cai, Chao Jiang, Zhong Zhang, and Luqi Liu. 2024. “Anisotropic Mechanical Properties of α-MoO3 Nanosheets.” Nanoscale 16 (8). https://doi.org/10.1039/d3nr06427a.
  • Wang, H., B. S. Dong, Z. B. Chen, J. Q. Liu, N. Haghdadi, R. Q. Lu, S. Primig, et al. 2024. “Effect of Compositional Heterogeneity on the Mechanical Properties of a Single-Phase Cu-9Al Alloy with Different Grain Sizes.” Acta Materialia 263. https://doi.org/10.1016/j.actamat.2023.119531.
  • Wang, Liqiang, Heyi Wang, Xin Zhou, Huangliu Fu, James Utama Surjadi, Shuo Qu, Xu Song, Rong Fan, and Yang Lu. 2024. “Hierarchical Crystalline–Amorphous Nanocomposites with High Strength and Large Deformability Enabled by Elemental Diffusion.” Journal of Materials Science and Technology 171. https://doi.org/10.1016/j.jmst.2023.06.046.
  • Wang, Nan, Qingping Cao, Xiaodong Wang, Shaoqing Ding, Dongxian Zhang, and Jian Zhong Jiang. 2024. “Ultra-Strong and Ductile Amorphous-Crystalline Ti-Zr-Hf-Nb-Ta/Co-Ni-V Nanolaminate Thin Films.” Journal of Alloys and Compounds 973. https://doi.org/10.1016/j.jallcom.2023.172874.
  • Wang, Yachun, Cameron B. Howard, Fei Xu, Daniele Salvato, Kaustubh K. Bawane, Daniel J. Murray, David M. Frazer, et al. 2024. “Microstructural and Micromechanical Characterization of Cr Diffusion Barrier in ATR Irradiated U-10Zr Metallic Fuel.” Journal of Nuclear Materials 599 (October): 155231. https://doi.org/10.1016/j.jnucmat.2024.155231.
  • Wang, Zi-Meng, Yun-Fei Jia, Jia-Dong Cai, Yuan-Yuan Cui, Xiao Li, Xian-Cheng Zhang, and Shan-Tung Tu. 2024. “Strain-Rate and Size Dependence of Gradient Lamellar Nickel Investigated by in-Situ Micropillar Compression.” Journal of Materials Research and Technology 32 (September): 3269–79. https://doi.org/10.1016/j.jmrt.2024.08.129.
  • Wei, Bingqiang, Wenqian Wu, Arkajit Ghosh, Metin Kayitmazbatir, Amit Misra, and Jian Wang. 2024. “In Situ SEM Characterization of Tensile Behavior of Nano-Fibrous Al–Si and Al–Si–Sr Eutectics.” Journal of Materials Science 59 (12): 5233–46. https://doi.org/10.1007/s10853-023-09118-7.
  • Weidner, Anja, Ruben Wagner, Mikhail Seleznev, and Horst Biermann. 2024. “Analysis of Detrimental Inclusions in Steel and Aluminum.” In , 645–77. https://doi.org/10.1007/978-3-031-40930-1_25.
  • Wu, Yaqiao, David Estrada, and Brenden Heidrich. 2024. “Microscopy and Characterization Suite – a Facility Designed for Post-Irradiation-Examination.” Microscopy and Microanalysis 30 (Supplement_1). https://doi.org/10.1093/mam/ozae044.966.
  • Wu, Yi Ling, Chung Chih Tsai, Pei Yu Chen, Jhen de You, and Chun Hway Hsueh. 2024. “Transforming Microstructures and Mechanical Properties of (CoCrNi)93-XAl7Ndx Medium Entropy Alloy Films by Annealing.” Surface and Coatings Technology 477. https://doi.org/10.1016/j.surfcoat.2023.130331.
  • Xu, Hailong, Li Huang, Wen Zhang, Jing Liang, Xiaohui Lin, Xuanqiao Gao, Yanchao Li, and Jianfeng Li. 2024. “Orientation-Dependent Ion-Irradiation Responses in Molybdenum and Molybdenum-Rhenium Alloys.” Materials Letters 363. https://doi.org/10.1016/j.matlet.2024.136317.
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2023
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