Nanoscale microscopy linked to Benchmarking and comparison, with source literature and related extracted records kept visible.
74%
Confidence
12
Literature sources
26
Linked simulants
218
Linked properties
Measurement type
Nanoscale microscopy
Application
Benchmarking and comparison
Primary source
High-yield selective extraction of metal iron from JSC-1A using molten salt electrolysis
Review state
needs review
olysis of JSC-1A in molten CaCl2 at 900 C with a variety of voltages between 1.0 and 1.75 V, allowing effective and selective extraction of metallic iron without contamination from the reduction of...
reduction. The reduction of the oxide alumina (Al 2 O 3) was intensively studied by continous-wave (CW) laser ablation [ 19 26 ]. A plume tem- perature of up to 5200 K was achieved using a 1. 1 k...
tion methods 2.3 Challenges and use case for geopolymer printing research 3 Regolith sintering 3.1 Microwave sintering 3.1.1 Interaction of nanophase iron particles with microwaves 3.1.2 Microwave...
.2018.08.006 S0094-5765(18)30291-1 LEAP2 and LCATS industry clusters: A framework for lunar site technology development using global, space-STEM education and global space-industry development netw...
Cross-section evaluation for porosity map 3.3 Surface morphology 3.4 Phase and chemical composition analysis 3.4.1 Phase prediction and XRD/TEM analysis for deposited LHS-1 part 3.4.2 Regional micr...
lso vaporize portions of the melt, which is then deposited on particle surfaces as silica-rich glass coatings containing abundant nanophase metallic iron (e.g., Keller and McKay 1993, 1997; Wentwor...
25 groups (h) CT 60D28W0. 45 5 groups Figure 7. F ailure pattern of alkali - activated CQU - 1 LRSG c ylindrical specimens with a curing tem- perature of 60 C. (a) CT 80D3W0.325 groups (b) C...
ized state as compared to the reduced version found in the lunar regolith, which formed in the absence of water and oxygen. The presence of nanophase iron in the lunar regolith could potentially be...
F. Pederson, L. Ellersick, H.-J. Kim | 2025 | Acta Astronautica
DOI 10.1016/j.actaastro.2025.03.032S. W. Ximenes, S. Roberts, T. S. Lee, H.-S. Shin, B. Foing, C. Duarte | 2019 | Acta Astronautica
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DOI 10.1038/s41598-020-62312-4P. Nieke, J. Kita, M. Häming, R. Moos | 2019 | Materials
DOI 10.3390/ma12030487X. Zhang, M. Khedmati, Y. Kim, H. Shin, J. Lee, Y. Kim, B. Cui | 2019 | Journal of the American Ceramic Society
DOI 10.1111/jace.16808S. Kaur, A. B. Aleksandrov, W. Ready, T. M. Orlando, P. G. Loutzenhiser | 2024 | Advances in Space Research
DOI 10.1016/j.asr.2024.01.025W. Sun, F. Dang, L. Ding | 2025 | Additive Manufacturing Frontiers
DOI 10.1016/j.amf.2025.20022574%
12 sources