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锌-二氧化锰锌离子电池:一个研究型综合性化学实验的设计与实践 被引量:1
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作者 吴兴隆 吕红艳 +4 位作者 杜苗 王嗣泽 王晓彤 张凯洋 李炜晨 《大学化学》 CAS 2023年第9期234-241,共8页
面向国家“双碳战略”需求,结合科技前沿和高校学生科研实践,设计了以低成本和高安全性为主要优势的锌-二氧化锰(Zn-MnO_(2))二次电池,并形成了一个标准化的物理化学综合实验。本实验首先通过水热法制备了α-MnO_(2),采用X射线衍射和扫... 面向国家“双碳战略”需求,结合科技前沿和高校学生科研实践,设计了以低成本和高安全性为主要优势的锌-二氧化锰(Zn-MnO_(2))二次电池,并形成了一个标准化的物理化学综合实验。本实验首先通过水热法制备了α-MnO_(2),采用X射线衍射和扫描电子显微镜对制得α-MnO_(2)的结构与形貌进行了表征,随后使用电池测试仪对锌片负极与α-MnO_(2)正极组装成的Zn-MnO_(2)锌离子电池进行了循环伏安、倍率和循环稳定性等电化学性能测试。该实验将科研热点转化为综合教学实验,从实验室走进日常生活,集化学材料合成、表征与电池电化学性能测试于一体,实验的不同模块可满足多种教学需求。此外,探究式学习与综合性操作相结合有助于提高学生的实验兴趣及化学实验操作水平;在教学过程中融入思政元素,渗透绿色理念,引导学生形成安全无污染的化学实验意识和可持续发展思想。 展开更多
关键词 锌离子电池 综合化学实验 二氧化锰 电化学性能
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Hyperspectral Image Super-Resolution Network Based on Reinforcing Inter-Spectral Incremental Information
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作者 Jialong Liang Qiang Li +2 位作者 size wang Charles Okanda Nyatega Xin Guan 《Journal of Beijing Institute of Technology》 EI CAS 2024年第4期307-325,共19页
Hyperspectral images typically have high spectral resolution but low spatial resolution,which impacts the reliability and accuracy of subsequent applications,for example,remote sensingclassification and mineral identi... Hyperspectral images typically have high spectral resolution but low spatial resolution,which impacts the reliability and accuracy of subsequent applications,for example,remote sensingclassification and mineral identification.But in traditional methods via deep convolution neural net-works,indiscriminately extracting and fusing spectral and spatial features makes it challenging toutilize the differentiated information across adjacent spectral channels.Thus,we proposed a multi-branch interleaved iterative upsampling hyperspectral image super-resolution reconstruction net-work(MIIUSR)to address the above problems.We reinforce spatial feature extraction by integrat-ing detailed features from different receptive fields across adjacent channels.Furthermore,we pro-pose an interleaved iterative upsampling process during the reconstruction stage,which progres-sively fuses incremental information among adjacent frequency bands.Additionally,we add twoparallel three dimensional(3D)feature extraction branches to the backbone network to extractspectral and spatial features of varying granularity.We further enhance the backbone network’sconstruction results by leveraging the difference between two dimensional(2D)channel-groupingspatial features and 3D multi-granularity features.The results obtained by applying the proposednetwork model to the CAVE test set show that,at a scaling factor of×4,the peak signal to noiseratio,spectral angle mapping,and structural similarity are 37.310 dB,3.525 and 0.9438,respec-tively.Besides,extensive experiments conducted on the Harvard and Foster datasets demonstratethe superior potential of the proposed model in hyperspectral super-resolution reconstruction. 展开更多
关键词 image processing hyperspectral image super-solution incremental information
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