私密直播全婐app免费大渔直播,国产av成人无码免费视频,男女同房做爰全过程高潮,国产精品自产拍在线观看

相關鏈接
聯系方式
  • 通信地址:廣西桂林七星區育才路15號
  • 郵編:541004
  • 電話:0773-5846479
  • 傳真:
  • Email:38469295@qq.com
當前位置:> 首頁 > 論文著作 > 正文
Self-activated continuous pulverization film: an insight into the mechanism of long-life of hexagonal H4.5Mo5.25O18?(H2O)1.36
作者:王海
關鍵字:community pharmacy, diabetes education,diabetes monitoring
論文來源:期刊
具體來源:Journal of Materials Chemistry A
發表時間:2016年
For large amounts of transition metal oxides, sulfides and carbon groups (IVA), the pulverization of electrode materials in lithium-ion batteries (LIBs) is always a serious and common problem due to volume expansion and stress accumulation resulting from phase transformation or alloying during the charge–discharge process, which leads to capacity fading and thus limits the cycling performance of LIBs. To solve these problems, conventionally, the rational design of electrode materials is needed. Here in this work, we report the synthesis of a novel anode material, hexagonal H4.5Mo5.25O18·(H2O)1.36 microrods (HMs) via a simple hydrothermal method. During the lithium-ion insertion/desertion process of the HMs, it was found that the HMs are first drastically transformed into Li2MoO4 nanotubes and then Li2MoO4 nanowire clusters embedded in amorphous sphere cages with a Li2O matrix, Mo metal and SEI thin film. Surprisingly, we discovered that the HMs exhibited extraordinary long-life cyclability with an unusual phenomenon: the specific capacity first decreased and then increased. The outstanding electrochemical performance could be explained by the formation of intermediate phase Li2MoO4 nanowires and amorphous sphere cages, which can maintain the lithium-ion paths and electronic transport, and prohibit the mechanical and chemical degradation of the electrode materials. The results show that the pulverization of the HM anode materials induced by lithium-ion insertion–extraction played a trigger role in the formation of a continuous pulverization film. Accordingly, a “damage-reconstruction” model based on ex situ XRD and FESEM analyses combined with ex situ XPS, FTIR and TEM characterizations of the charge–discharge process was proposed to explain such an unusual and intriguing finding. Compared with the conventional method for protecting electrode materials from pulverization, the robust continuous gel-like pulverization film containing a unique combination of intermediate phase and amorphous sphere cages provides a new insight into the mechanism for the extraordinary long-term cyclability of electrode materials.
主站蜘蛛池模板: 崇州市| 安宁市| 绵阳市| 修武县| 伊金霍洛旗| 绥棱县| 玉屏| 两当县| 涟水县| 阳西县| 洛扎县| 长泰县| 宜都市| 望城县| 乐业县| 盐亭县| 怀宁县| 金乡县| 南川市| 马关县| 平乐县| 临澧县| 邵阳市| 莱州市| 潜山县| 华池县| 平度市| 饶河县| 北京市| 泽库县| 申扎县| 济宁市| 新晃| 炉霍县| 镇平县| 武宁县| 永春县| 高清| 德昌县| 建阳市| 中江县|