ion milling machine im 4000 plus (Hitachi Ltd)
97
Structured Review
Hitachi Ltd
ion milling machine im 4000 plus
Ion Milling Machine Im 4000 Plus, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 97/100, based on 1171 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/im4000+plus+ion+milling+system/IM4000/pmc13074385-75-1-7
Average 97 stars, based on 1171 article reviews
Ion Milling Machine Im 4000 Plus, supplied by Hitachi Ltd, used in various techniques. Bioz Stars score: 97/100, based on 1171 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/im4000+plus+ion+milling+system/IM4000/pmc13074385-75-1-7
Average 97 stars, based on 1171 article reviews
ion milling machine im 4000 plus - by Bioz Stars,
2026-09
97/100 stars
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other:Article Title: Improving properties of boron carbide (B4C) with silicon doping and titanium diboride addition Article Snippet: Sample surfaces were prepared for microstructure examination with cross-section ion milling for 5 h with a 6 kV acceleration voltage, and additional flat milled for 5 min at an 80◦ tilt angle, with a 3 kV acceleration voltage, using a Article Title: A study on the influence of impurity content on fatigue endurance in a 6082 Al-alloy Article Snippet: Samples for the EBSD studies are prepared by conventional metallographic method followed by Article Title: Improving fracture toughness of B4C – SiC composites by TiB2 addition Article Snippet: B4C-SiC composites can be used in many areas due to their superior properties.. However, in order to be used as a body armor material in areas requiring high performance, their fracture toughness needs a degree of improvement.. In this study, 0–20 wt% TiB2 was added to B4C-SiC samples that were consolidated at 1950 C by spark plasma sintering method. Article Title: Imidazole-based LiHDI salt for SEI optimization in silicon anodes Article Snippet: Cross-sectioning was carried out under an inert and controlled atmosphere using a Article Title: The role of carbon addition on properties of boron carbide- silicon carbide composites Article Snippet: In this research, composites were produced by mixing boron carbide (B4C) and silicon carbide (SiC) with varying amounts of carbon (C) and densifying them via spark plasma sintering at 1950 C for 5 min.. The effects of different C contents on the properties of the composites were observed.. Density, elastic modulus, microstructure, Vickers hardness, and fracture toughness were evaluated. Article Title: Achievement of enhanced strength and toughness in ductile iron via a heterogeneous microstructure of pearlite and tempered martensite through heat treatment Article Snippet: With the increasing demand for the simultaneous enhancement of strength and toughness in ductile iron, single or multiphase microstructures obtained via traditional heat treatment still struggle to balance strength and ductility.. For instance, multiphase structures such as ferrite/martensite or ferrite/bainite exhibit relatively high ductility but limited strength; furthermore, due to insufficient ductility of the hard phase, their heterogeneous deformation-induced (HDI) strengthening potential has not been fully exploited.. In contrast, ferrite/pearlite microstructures suffer from low overall performance owing to the inherently modest strength of pearlite. Article Title: Effect of Sintering Temperature and Applied Pressure on the Properties of Boron Carbide-Silicon Carbide Composites Article Snippet: To obtain high density boron carbide-silicon carbide composites, the spark plasma sintering method was used.. 50% B4C–1.5% C–48.5% SiC mixture compositions were sintered at four different temperatures (1800, 1850, 1900, 1950°C) under 50 MPa pressure and four different applied pressures (20, 30, 40, and 50 MPa) at a constant temperature of 1950°C.. The boron carbide-silicon carbide composites reached full density (>99% th. density) at 1950°C and under 50 MPa pressure. Electron Microscopy:Article Title: Interlinking Primary Grains with Lithium Boron Oxide to Enhance the Stability of LiNi 0.8 Co 0.15 Al 0.05 O 2 . Article Snippet: Destructive effects of surface lithium residues introduced in synthesis and degradation of the microstructure and electrode/electrolyte interface during cycling of Ni-rich cathode materials are the major problems hindering their wide application.. Herein, we demonstrate an exquisite surface modification strategy that can utilize lithium residues on the surface of LiNi0.8Co0.15Al0.05O2 to form a uniform coating layer of lithium boron oxide on the surface of the material.. The resulting lithium boron oxide layer can not only efficiently serve as a protective layer to alleviate the side reactions at the electrode/electrolyte interface but also tightly interlink the primary grains of the LiNi0.8Co0.15Al0.05O2 material to prevent the material from degradation of the microstructure. |