Abstract:2D Fe‐chalcogenides have drawn significant attention due to their unique structural phases and distinct properties in exploring magnetism and superconductivity. However, it remains a significant challenge to synthesize 2D Fe‐chalcogenides with specific phases in a controllable manner since Fe‐chalcogenides have multiple phases. Herein, a molecular sieve‐assisted strategy is reported for synthesizing ultrathin 2D iron sulfide on substrates via the chemical vapor deposition method. Using a molecular sieve and tu… Show more
“…Two-dimensional pyrrhotite has been produced by several methods, such as a hydrothermal method, 8–10 systematic reduction of pyrite FeS 2 films by vacuum annealing, 11 and a molecular sieve-assisted CVD method. 12 In 2017, Chen et al obtained pyrrhotite nanosheets in a top-down approach from a pyrrhotite–hexylamine intermediate (inorganic–organic hybrid intermediate) synthesized by the hydrothermal method through ultrasonic treatment in an organic solvent. 13 However, these bottom-up methods produce stable stoichiometries without ordered vacancy planes and only yield 2D layers with thicknesses that are limited by the unit cell dimension.…”
Conventional exfoliation exploits the anisotropy in bonding or compositional character to delaminate 2D materials with large lateral size and atomic thickness. This approach, however, limits the choice to layered host...
“…Two-dimensional pyrrhotite has been produced by several methods, such as a hydrothermal method, 8–10 systematic reduction of pyrite FeS 2 films by vacuum annealing, 11 and a molecular sieve-assisted CVD method. 12 In 2017, Chen et al obtained pyrrhotite nanosheets in a top-down approach from a pyrrhotite–hexylamine intermediate (inorganic–organic hybrid intermediate) synthesized by the hydrothermal method through ultrasonic treatment in an organic solvent. 13 However, these bottom-up methods produce stable stoichiometries without ordered vacancy planes and only yield 2D layers with thicknesses that are limited by the unit cell dimension.…”
Conventional exfoliation exploits the anisotropy in bonding or compositional character to delaminate 2D materials with large lateral size and atomic thickness. This approach, however, limits the choice to layered host...
“…When NiMgFe-MMO was vulcanized, FeS (PDF#37-0477) and NiS (PDF#12-0041), which were also in the hexagonal crystal system, appeared, as evidenced by the XRD correlation diffraction peaks and Raman activity signals. [35][36][37] At the same time as obtaining MgFe-CO 3 2− -LDHs, the diffraction peaks of layered structure in XRD (Fig. 1A), CO 3 2− vibrational peaks in FTIR (Fig.…”
Section: Synthesis and Characterization Of The Photocatalystmentioning
Enzyme-mimetic photocatalysis has been attracting much attention in bionic research, in which carbon monoxide dehydrogenase (CODH) is a right prototype for simulation to meet environmental and energy needs. In this...
“…Chemical vapor deposition (CVD) is recognized as a premier technique for producing high-quality 2D materials. [30][31][32][33][34] Yet, fabricating large-scale, uniformly thin layers of 1T phase CrS 2 presents significant challenges, including issues with small sizes and excessive thickness. [35][36][37] Addressing this, there's a critical need for innovative approaches capable of consistently producing expansive, thin layers of 1T-CrS 2 .…”
A high-quality layered 1T-CrS2 floating-gate memory was fabricated, which exhibits a high switching ratio (∼107), a large window ratio (79%), excellent optical and electrical storage capabilities, and potential integratable for CMOS circuits.
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