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Smart WindowWindows not only let light in to cut down an electricity use for lighting, but

Smart Window

Windows not only let light in to cut down an electricity use for lighting, but the light coming through the window also provides heat. However, windows are not something people typically associate with being a cutting edge technology. Researchers are now working on new technologies that enable a window to quickly change from clear to dark and anywhere in between with a flip of a switch.

"It took us a long time to figure out what a window really is," says Claes Granqvist. He's a professor of solid-state physics at Uppsala University in Sweden. "It's contact with the outside world. You have to have visual contact with the surrounding world to feel well. " So, windows and natural light are important for improving the way people feel when they're stuck indoors.

Yet, windows are the weak link in a building when it comes to energy and temperature control. In the winter, cold air leaks in. When it's hot and sunny, sunlight streams in. All of this sunlight carries lots of heat and energy. And all of this extra heat forces people to turn on their air conditioners. Producing blasts of cold air, which can feel so refreshing, actually suck up enormous amounts of electricity in buildings around the world.

Windows have been a major focus of energy research for a long time. Over the years, scientists have come up with a variety of strategies for coating, glazing, and layering windows to make them more energy efficient. Smart windows go a step further. They use chromogenic technologies which involve changes of color.

Electrochromic windows use electricity to change color. For example, a sheet of glass coated with thin layers of chemical compound such as tungsten oxide works a bit like a battery. Tungsten oxide is clear when an electric charge is applied and dark when the charge is removed, that is, when the amount of voltage is decreased, the window darkens until it's completely dark after all electricity is taken away. So applying a voltage determines whether the window looks clear or dark.

One important feature that makes a smart window so smart is that it has a sort of "memory. " All it takes is a small jolt of voltage to turn the window from one state to the other. Then, it stays that way. Transitions take anywhere from 10 seconds to a few minutes, depending on the size of the window. The development of smart windows could mean that massive air conditioning systems may no longer need. "In the future," Granqvist says, "our buildings may look different. "

Which of the following statements does not indicate the importance of windows as described in the first two paragraphs?

A.Windows can change from clear to dark to save energy.

B.Windows help to save energy by letting light in.

C.Windows help to save energy by providing heat.

D.Windows enable people to have contact with the outside world.

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更多“Smart WindowWindows not only l…”相关的问题

第1题

莨菪碱的碱性强于东莨菪碱的原因是

A.诱导效应

B.空间效应

C.吸电子共轭效应

D.氢键效应

E.氮原子的杂化方式

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第2题

莨菪碱和东莨菪碱碱性差异的原因是( )。

A.氮原子杂化方式

B.诱导效应

C.空间效应

D.共轭效应

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第3题

伪麻黄碱碱性强于麻黄碱是因为A.氮原子杂化方式B.诱导--场效应C.共轭效应D.空间效应E.氢键效应

伪麻黄碱碱性强于麻黄碱是因为

A.氮原子杂化方式

B.诱导--场效应

C.共轭效应

D.空间效应

E.氢键效应

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第4题

莨菪碱碱性大于东莨菪碱可解释为A.氮原子杂化方式B.共轭效应C.分子内氢键D.立体效应E.异构效应

莨菪碱碱性大于东莨菪碱可解释为

A.氮原子杂化方式

B.共轭效应

C.分子内氢键

D.立体效应

E.异构效应

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第5题

莨菪碱碱性大于东莨菪碱可解释为A.场效应B.共轭效应C.分子间氢键D.

莨菪碱碱性大于东莨菪碱可解释为

A.场效应

B.共轭效应

C.分子间氢键

D.立体效应

E.诱导效应

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第6题

东莨胆碱的碱性弱于莨菪碱的主要原因是()

A.氮原子的杂化方式

B.共轭效应

C.诱导效应

D.空间效应

E.氢键效应

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第7题

东莨菪碱的碱性弱于莨菪碱的主要原因是由于

A、氮原子的杂化方式

B、共轭效应

C、诱导效应

D、空间效应

E、氢键效应

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第8题

伪麻黄碱的碱性强于麻黄碱是因为A.氮原子杂化方式B.诱导效应C.共轭效应D.空间效应E.氢键效应

伪麻黄碱的碱性强于麻黄碱是因为

A.氮原子杂化方式

B.诱导效应

C.共轭效应

D.空间效应

E.氢键效应

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第9题

东莨菪碱比莨菪碱碱性弱的原因是A、分子内氢键B、N为酰胺型C、氮原子杂化方式不同D、诱导效应E、空间

东莨菪碱比莨菪碱碱性弱的原因是

A、分子内氢键

B、N为酰胺型

C、氮原子杂化方式不同

D、诱导效应

E、空间效应

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第10题

东莨菪碱比莨菪碱碱性弱的原因是A、分子内氢键B、N为酰胺型C、氮原子杂化方式不同D、诱导效应E、空间

东莨菪碱比莨菪碱碱性弱的原因是

A、分子内氢键

B、N为酰胺型

C、氮原子杂化方式不同

D、诱导效应

E、空间效应

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