Controlled Synthesis of Sub-Millimeter Nonlayered WO 2 Nanoplates via a WSe 2 -Assisted Method.
Chongguang LyuLinghai ZhangXu ZhangHongmei ZhangHongguang XieJianhong ZhangYufeng LiuYu LiuRuixia WuJunran ZhangChenyang ZhaWei WangZhong WanBo LiChao ZhuHuifang MaXidong DuanLin WangPublished in: Advanced materials (Deerfield Beach, Fla.) (2023)
2D metal oxides (2DMOs) have stimulated tremendous attention due to their distinct electronic structures and abundant surface chemistry. However, it remains a standing challenge for the synthesis of 2DMOs because of their intrinsic 3D lattice structure and ultrahigh synthesis temperature. Here, a reliable WSe 2 -assisted chemical vapor deposition (CVD) strategy to grow nonlayered WO 2 nanoplates with tunable thickness and lateral dimension is reported. Optical microscopy and scanning electron microscopy studies demonstrate that the WO 2 nanoplates exhibit a well-faceted rhombic geometry with a lateral dimension up to the sub-millimeter level (≈135 µm), which is the largest size of 2DMO single crystals obtained by CVD to date. Scanning transmission electron microscopy studies reveal that the nanoplates are high-quality single crystals. Electrical measurements show the nanoplates exhibit metallic behavior with strong anisotropic resistance, outstanding conductivity of 1.1 × 10 6 S m -1 , and breakdown current density of 7.1 × 10 7 A cm -2 . More interestingly, low-temperature magnetotransport studies demonstrate that the nanoplates show a quantum-interference-induced weak-localization effect. The developed WSe 2 -assisted strategy for the growth of WO 2 nanoplates can enrich the library of 2DMO materials and provide a material platform for other property explorations based on 2D WO 2 .
Keyphrases
- electron microscopy
- high resolution
- visible light
- high throughput
- case control
- optical coherence tomography
- oxidative stress
- minimally invasive
- room temperature
- single cell
- dna methylation
- working memory
- gene expression
- single molecule
- molecular dynamics
- diabetic rats
- genome wide
- quantum dots
- drug discovery
- ionic liquid