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大學(xué)生創(chuàng)新創(chuàng)業(yè)訓(xùn)練結(jié)題報(bào)告(編輯修改稿)

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【文章內(nèi)容簡(jiǎn)介】 米材料等功能層產(chǎn)生的必然規(guī)律性信號(hào)。結(jié)論本項(xiàng)目采用化學(xué)氣相沉積法制備了超薄二維半導(dǎo)體納米材料(石墨烯),并研究了超薄二維半導(dǎo)體納米材料的成分、微觀結(jié)構(gòu)、形貌和光電性能。我們選擇了生長質(zhì)量良好的超薄二維半導(dǎo)體納米片,經(jīng)過一系列的工藝,制備了化學(xué)分子驅(qū)動(dòng)的超薄二維半導(dǎo)體納米材料自供電傳感器件,測(cè)試了其基本電學(xué)性能。在獲得化學(xué)分子驅(qū)動(dòng)傳感器基本電學(xué)性能的基礎(chǔ)之上,測(cè)試了不同化學(xué)有機(jī)溶液作用下,大面積石墨烯和二維結(jié)構(gòu)超薄納米材料的化學(xué)分子驅(qū)動(dòng)自供電傳感器件的輸出電學(xué)性能。展望本課題對(duì)化學(xué)分子驅(qū)動(dòng)自供電傳感器件性能進(jìn)行了初步研究,證實(shí)二維超薄材料納米傳感器件在極性分子作用下能夠產(chǎn)生穩(wěn)定持續(xù)的電能,為解決微納電子器件的微電源的維護(hù)和替換難題提供了新的思路。因此,希望有越來越多的人來研究制備自供電傳感器件,也希望能對(duì)自供電傳感器件的其他性能進(jìn)行探究。相信隨著納米科技的發(fā)展,自供電傳感器件作為一種優(yōu)秀的納米功能器件,具有非常廣闊的前景。大學(xué)生創(chuàng)新創(chuàng)業(yè)訓(xùn)練計(jì)劃項(xiàng)目結(jié)題報(bào)告 參考文獻(xiàn)[1] , , , , , Nanofibrous polyethyleneimine membranes as sensitive coatings for quartz crystal microbalancebased formaldehyde B, Chem., 144(2010)1117.[2] , , , , Trace determination of free formaldehyde in DTP and DT vaccines and diphtheriatetanus antigen by single drop microextraction and gas chromatographymass ., 50(2009)287292.[3] , , , The hybrid of Pd and SWCNT(Pd loaded on SWCNT)as an efficient sensor for the formaldehyde molecule detection: a DFT study, B 212(2015)5562.[4] , , , , , A novel electrochemical sensor for formaldehyde based on palladium nanowire arrays electrode inalkaline media, Electrochimica Acta 68(2012)172177.[5] , , , Fisher, , , A simplified apparatus for ambient formaldehyde detection via GCpHID, (18)(2003)25572565.[6] , , , , , , , Enhanced BTEX gassensing performance of CuO/SnO2 posite, B 223(2015)914920.[7] , , , , Improving humidity selectivity in formaldehyde gas sensing by a twosensor array made of Gadoped ZnO, B 138(1)(2009)228235.[8] , , , , , UV light activation of TiO2 for sensing formaldehyde: how to be sensitive, recovering fast, and humidity less sensitive, B 202(2014)964–970.[9] , , , , , , , , Threedimensional ordered SnO2 inverse opals for superior formaldehyde gassensing performance, B 188(2013)235241.[10] , , , , Gharahcheshmeh, Xu, , , , Improved flux pinning by prefabricated SnO2 nanowires embedded in epitaxial YBa2Cu3Ox superconducting thin film tapes, 29(2016)085016085028.[11] , , , , , Structure and enhanced field emission properties of coneshaped Zndoped SnO2 nanorod arrays on copper foil, (2016)3235.[12] , , Nair, Fabrication of CdSe sensitized SnO2 nanofiber quantum dot solar cells, (2016)370377.[13] , , , , , , Improved ethanediol sensing with single Yb ions doped SnO2 nanobelt, (2016)1090210907.[14] , , , , , Rational design of highly porous SnO2 nanotubes functionalized with biomimetic nanocatalysts for direct observation of simulated diabetes, (2016)47404748.[15] , , , Hierarchical assembly of SnO2/ZnO nanostructures for enhanced photocatalytic performance, Scientific reports, 5(2015)1160911619.[16] , , , Fabrication of wheat grain textured TiO2/CuO posite nanofibers for enhanced solar H2 generation and degradation performance, Nano Energy, 11(2015)2837.[17] , , Metal oxide nanowires as chemical sensors, 13(2010)2836.[18] , , , , Detection of individual gas molecules adsorbed on graphene, (2007)652655.[19] , , , , , , , , Preparation of Pd nanoparticledecorated hollow SnO2 nanofibers and/ their enhanced formaldehyde sensing properties, (2015)690698.[20] , , , , , , Formaldehyde gas sensor based on SnO2/In2O3 heteronanofibers by a modified double jets electrospinning process, B 166167(2012)[21] , , , , , , , synthesis of mesoporous spherical SnO2@graphene for highsensitivity formaldehyde gas Advances 6(30)(2016)2519825202.[22] , , , , , , , , Reduced graphene oxide/hierarchical flowerlike zinc oxide hybrid films for room temperature formaldehyde detection, B 221(2015)12901298.[23] , , Highly sensitive and selective gas sensors using ptype oxide semiconductors: Overview, B 192(2014)607627.[24] , , , , , Preparation of hollow porous Co doped SnO2 microcubes and their enhanced gas sensing property, Cryst Eng Comm 15(2013)75157521.[25] , , Adsorption of formaldehyde molecule on the intrinsic and Aldoped graphene: A first principle study, (2009)10851090.[26] , , , , , , , , , Substrateinduced solvent intercalation for stable graphene doping, ACS Nano 7(2013)11551162.[27] , , , , , , , ,Workfunction engineering of graphene electrodes by selfassembled monolayers for highperformance organic fieldeffect transistors, (2011)第三篇:大學(xué)生創(chuàng)新創(chuàng)業(yè)訓(xùn)練項(xiàng)目結(jié)題報(bào)告大學(xué)生創(chuàng)新創(chuàng)業(yè)訓(xùn)練計(jì)劃項(xiàng)目結(jié)題報(bào)告項(xiàng) 目 編 號(hào)201410704036 項(xiàng) 目 名 稱 校園微信公眾平臺(tái)設(shè)計(jì)與開發(fā) 項(xiàng) 目 類 型 項(xiàng) 目 級(jí) 別 項(xiàng) 目 負(fù) 責(zé) 人 結(jié) 題 日 期創(chuàng)新訓(xùn)練項(xiàng)目 國家級(jí) 胡月 實(shí)驗(yàn)室與設(shè)備管理處 制一、選題背景、意義及創(chuàng)新性微信公眾平臺(tái)是騰訊公司在微信的基礎(chǔ)上新增的功能模塊,通過這一平臺(tái),個(gè)人和企業(yè)都可以打造一個(gè)微信的公眾號(hào),可以群發(fā)文字、圖片、語音、視頻、圖文消息五個(gè)類別的內(nèi)容。目前微信公眾平臺(tái)支持PC端網(wǎng)頁、移動(dòng)互聯(lián)網(wǎng)客戶端登錄,并可以綁定私人帳號(hào)進(jìn)行群發(fā)信息。微信公眾平臺(tái)是一個(gè)自媒體平臺(tái),它是微信系統(tǒng)的重要組成部分,微信整個(gè)板塊包含個(gè)人微信、二維碼、公眾平臺(tái)。隨著微信的不斷改進(jìn),越來越多的個(gè)人和企業(yè)看到了微信平臺(tái)優(yōu)勢(shì),加入這個(gè)劃時(shí)代的全新手機(jī)聊天體驗(yàn)之戰(zhàn)。騰訊微信利用開放平臺(tái)、語音信息等功能內(nèi)進(jìn)行推送,創(chuàng)意執(zhí)行,可以直接在公眾平臺(tái)上打造品牌信息傳遞的生態(tài)鏈。從平臺(tái)功能來看,目前公眾平臺(tái)的主要功能包括多媒體信息大規(guī)模推送、定向推送(可按性別、地區(qū)、分組等指標(biāo)定向推送),一對(duì)一互動(dòng),多樣化開發(fā)和智能回復(fù)等。校園微信公眾平臺(tái)將是快速傳遞校園信息的又一新方式。校園微信公眾平臺(tái)的優(yōu)勢(shì):大學(xué)生受眾的基數(shù)大。根據(jù)中國高等教育發(fā)展計(jì)劃最新統(tǒng)計(jì),~%的速度在擴(kuò)招,2020年高校學(xué)生數(shù)量能達(dá)到5000萬。微信為新媒體,對(duì)大學(xué)生受眾有很強(qiáng)的吸引力,而且迎合了當(dāng)代大學(xué)生的生活習(xí)慣。微信發(fā)送語音形式的消息,使得信息的傳遞更具人性化、更貼近生活。微信公眾平臺(tái)的開通,實(shí)現(xiàn)了信息一對(duì)多的傳播,而且互動(dòng)性更強(qiáng)。創(chuàng)新性:與傳統(tǒng)的軟件開發(fā)不同,校園微信公眾平臺(tái)的開發(fā)及享受與公眾平臺(tái)提供的開發(fā)接口,又限制于平臺(tái)所提供的接口。所以,微信的開發(fā)的重點(diǎn)主要是利用平臺(tái)所提供的接口完成功能,此外,在公眾平臺(tái)固有的基礎(chǔ)之上,引入了BuiduMap API與Web,極大的豐富了公眾平臺(tái)的內(nèi)容以及功能。二、項(xiàng)目研究目標(biāo)及工作方案項(xiàng)目研究目標(biāo):通過調(diào)用微信公眾平臺(tái)提供的接口,實(shí)現(xiàn)關(guān)注校園公眾賬號(hào)的微信用戶可以通過微信快速的接受到校園公眾賬號(hào)所發(fā)出的消息,以及能夠自主的通過校園公
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