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} | } | ||
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+ | } | ||
+ | #for_judge{ | ||
+ | position:fixed; | ||
+ | left:5px; | ||
+ | top:80%; | ||
+ | width:120px; | ||
+ | height:70px; | ||
+ | line-height:70px; | ||
+ | z-index:6; | ||
+ | padding:2px; | ||
+ | alignment-adjust: central; | ||
+ | background-image:url("https://static.igem.org/mediawiki/2018/f/f9/T--Nanjing-China--for-judge.png"); | ||
+ | background-repeat:no-repeat; | ||
+ | background-position:center; | ||
+ | border:rgba(153,153,153,1) 3px groove; | ||
+ | border-radius:8px; | ||
+ | } | ||
+ | #for_judge .i ul{ margin: auto; padding:0; list-style:none; width:120px; height:70px; line-height:70px; text-align:center; float:left;} | ||
+ | #for_judge .i ul a:hover{ background:rgba(102,51,0,0.6);color:#FFFFFF; height:70px; padding:0px; line-height:70px; } | ||
+ | #for_judge .i ul a{ text-decoration:blink; color:#C93; font-family:"Courier New", Courier, monospace; height:70px; padding:0px; line-height:70px; } | ||
+ | #for_judge ul{ | ||
+ | margin: auto; padding:0; list-style:0; background:rgba(204,153,255,0); text-align:center; float:left; list-style:0;} | ||
+ | #for_judge ul a{ | ||
+ | text-decoration: none; | ||
+ | display:block; | ||
+ | color:#003; | ||
+ | } | ||
+ | #for_judge ul a:hover{ background:rgba(255,51,102,0.5); color:#FFFFFF; width:120px; height:70px; font-family: "Comic Sans MS", cursive;} | ||
+ | #for_judge ul a#on{ background:rgba(120,153,255,0.7); width:120px; height:70px; | ||
} | } | ||
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<div id="menu" > | <div id="menu" > | ||
<ul> | <ul> | ||
− | <li><a href="https://2018.igem.org/Team:Nanjing-China"> | + | <li><a href="https://2018.igem.org/Team:Nanjing-China">PEOPLE</a> |
<ul> | <ul> | ||
<li><a href="https://2018.igem.org/Team:Nanjing-China/Team">Team</a></li> | <li><a href="https://2018.igem.org/Team:Nanjing-China/Team">Team</a></li> | ||
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<div class="word" id="IA"> | <div class="word" id="IA"> | ||
<h1>Introduction</h1> | <h1>Introduction</h1> | ||
− | <p>Our team, Nanjing-China 2018, intends to establish a sound and ideal whole-cell photocatalytic nitrogen fixation system. We use the engineered | + | <p>Our team, Nanjing-China 2018, intends to establish a sound and ideal whole-cell photocatalytic nitrogen fixation system. We use the engineered E. coli cells to express nitrogenase and in-situ synthesize of CdS semiconductors in the biohybrid system. Instead of ATP-hydrolysis, such system is able to photocatalytic N<sub>2</sub>(nitrogen) to NH<sub>3</sub>(ammonia). The biohybrid system based on engineered E. coli cells with biosynthesis inorganic materials will likely become an alternative approach for the convenient utilization of solar energy.</p> |
</div> | </div> | ||
<div align="center" class="word" id="i-menu"> <div class="i-menu-button" style="background-image:none;"><ul style="background-image:none;"><a href="https://2018.igem.org/Team:Nanjing-China/Team"><img src="https://static.igem.org/mediawiki/2018/f/fe/T--Nanjing-China--signal-1.jpg" height="150px" /></a></ul></div> | <div align="center" class="word" id="i-menu"> <div class="i-menu-button" style="background-image:none;"><ul style="background-image:none;"><a href="https://2018.igem.org/Team:Nanjing-China/Team"><img src="https://static.igem.org/mediawiki/2018/f/fe/T--Nanjing-China--signal-1.jpg" height="150px" /></a></ul></div> |
Revision as of 11:44, 15 October 2018
Introduction
Our team, Nanjing-China 2018, intends to establish a sound and ideal whole-cell photocatalytic nitrogen fixation system. We use the engineered E. coli cells to express nitrogenase and in-situ synthesize of CdS semiconductors in the biohybrid system. Instead of ATP-hydrolysis, such system is able to photocatalytic N2(nitrogen) to NH3(ammonia). The biohybrid system based on engineered E. coli cells with biosynthesis inorganic materials will likely become an alternative approach for the convenient utilization of solar energy.