{"title":"Characterization of GO Added ZnO Crystal Growth Using Electric Current Heating Method","authors":"A. Sutjipto, Ari Legowo","doi":"10.4028/p-vcv6xc","DOIUrl":null,"url":null,"abstract":"ZnO has attractive and great properties especially in the fields of photonics, electronics and optics and it is widely used in the manufacturing industry of photodetectors, laser diodes and gas detectors. Therefore, various methods have been carried out to produce ZnO crystals and one of them is the Electric Current Heating method. Electric Current Heating (ECH) method is a fabrication technique applied in researches to grow ZnO crystal on a ceramic bar. This method is preferred because of it is easy to operate in laboratory, low growth temperature and also low cost. In this research, by using powder metallurgy process, Graphene Oxide/GO (in various weight percentage) added into ZnO was pelletized in a compaction die with dimension of 14.95 mm x 30 mm x 40 mm and pressure of 4 bar. The pellet green body was then sintered at 1100 °C with rate 10.0 °C/min for 3 hours. The sintered GO added ZnO ceramic was cut into ceramic bar with dimensio of 13mm x 2mm x 2mm. ECH with current 3 A and applied voltage of 30 V was used to heat the ceramic bar to produce crystals. Under scanning electron observation, it was found different crystal-like structures for each percentage GO addition. UV-Vis measurement has shown that each crystal-like structure of a GO added ZnO has own degree of energy absorbsion because of different band gap. Addition GO into ZnO would increase band gap of pure ZnO.","PeriodicalId":177608,"journal":{"name":"Journal of Metastable and Nanocrystalline Materials","volume":"280 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-04-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Metastable and Nanocrystalline Materials","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.4028/p-vcv6xc","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
ZnO has attractive and great properties especially in the fields of photonics, electronics and optics and it is widely used in the manufacturing industry of photodetectors, laser diodes and gas detectors. Therefore, various methods have been carried out to produce ZnO crystals and one of them is the Electric Current Heating method. Electric Current Heating (ECH) method is a fabrication technique applied in researches to grow ZnO crystal on a ceramic bar. This method is preferred because of it is easy to operate in laboratory, low growth temperature and also low cost. In this research, by using powder metallurgy process, Graphene Oxide/GO (in various weight percentage) added into ZnO was pelletized in a compaction die with dimension of 14.95 mm x 30 mm x 40 mm and pressure of 4 bar. The pellet green body was then sintered at 1100 °C with rate 10.0 °C/min for 3 hours. The sintered GO added ZnO ceramic was cut into ceramic bar with dimensio of 13mm x 2mm x 2mm. ECH with current 3 A and applied voltage of 30 V was used to heat the ceramic bar to produce crystals. Under scanning electron observation, it was found different crystal-like structures for each percentage GO addition. UV-Vis measurement has shown that each crystal-like structure of a GO added ZnO has own degree of energy absorbsion because of different band gap. Addition GO into ZnO would increase band gap of pure ZnO.
氧化锌具有诱人的优良特性,尤其是在光子学、电子学和光学领域,它被广泛应用于光电探测器、激光二极管和气体探测器的制造行业。因此,生产氧化锌晶体的方法多种多样,其中之一就是电流加热法。电流加热法(ECH)是一种在陶瓷棒上生长氧化锌晶体的制造技术。这种方法易于在实验室中操作,生长温度低,成本也低,因此备受青睐。在这项研究中,利用粉末冶金工艺,将氧化锌中添加的不同重量百分比的氧化石墨烯/GO 在尺寸为 14.95 毫米 x 30 毫米 x 40 毫米、压力为 4 巴的压制模中进行造粒。然后在 1100 °C、10.0 °C/分钟的温度下烧结球团绿色体 3 小时。烧结后的添加了 GO 的氧化锌陶瓷被切割成尺寸为 13mm x 2mm x 2mm 的陶瓷棒。使用电流为 3 A、电压为 30 V 的电热恒温器加热陶瓷棒,使其产生晶体。扫描电镜观察发现,GO 的添加比例不同,晶体结构也不同。紫外可见光测量结果表明,由于带隙不同,添加了 GO 的氧化锌的每种晶体结构都有自己的能量吸收程度。在氧化锌中添加 GO 会增加纯氧化锌的带隙。