w********o
发帖数: 10088 | 1 嗯,你说的对,应该是光子的wavenumber。那么声子的能量就是根据这个wavenumber算
出来的能量(速度用光速)?我就是一直没搞清楚这个wavenumber和声子能量的对应关系 |
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j*****n
发帖数: 26 | 2 Thank you :)
It is interesting to consider the hyperconjugation effect.
Actually, due to the lack of C-X bond at the carbond adjacent to the
carbonyl carbon, the main component of the hyperconjugation may come from
the C-H sigma bond to the anti-pi orbital of C=O. More hyperconjugation
should lead to weaker C=O bond. I guess, less constraint of the ring, could
benefit to the hypercunjugation.
Maybe this is the reason why the wavenumber decreases from 4-ring to 7-ring.
As expectation, acyclic ket... 阅读全帖 |
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c*******g
发帖数: 475 | 3 搞定
clc
filename='c:\Documents and Settings\User Name\My Documents\Spectral File.SPA
';
fid=fopen(filename,'r');
% Find the points number
fseek(fid,hex2dec('234'),'bof');
Number_of_DataPoints=fread(fid,1,'int32');
%Find the maximum and minimum of Wavenumber (cm-1) range
fseek(fid,576,'bof');
Maximum_Wavenumber=fread(fid,1,'single');
Minimum_Wavenumber=fread(fid,1,'single');
Interval=(Maximum_Wavenumber-Minimum_Wavenumber)/(Number_of_DataPoints-1);
Wavenumber=linspace(Minimum_Wavenumber,Maximum_Wa |
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E*******1
发帖数: 3464 | 4 c*h/lamda_1-c*h/lamda_2==Delta_E_light=c*h/RamanShift
Delta_E_light==E_phonon
里面不涉及任何有关声子的wavenumber啊,因为raman是用光子probing的,你要算声子
的wavenumber得知道声子的色散关系,比如用简单的德拜模型 E_phonon==h*v*q,声速
v才千米/s量级,所以声子的波矢在raman谱中只有q=0
关系 |
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G****o
发帖数: 229 | 5 我在听,目前主要是讲如何推箱子
project是做 guitar amp 估计都是重点在做音箱吧
Week 1
Lesson 1: Introduction to wave propagation, simple oscillating systems,
sound pressure, sound waves, the speed of sound, wavelength, frequency and
wavenumber, sound pressure level, and auditory directional cues.
Lesson 2: Electronics fundamentals - charge, current, voltage, resistance,
Ohm’s law, DC circuits, finding currents and voltages in simple circuits
Week 2
Lesson 1: Reflection and absorption of sound, resonances in air columns,
res... 阅读全帖 |
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h*******o
发帖数: 1114 | 6 非常感谢!我们老师说因为包括起始物中间体和最终两个产物,应该有4 PCs,而且应
该能get principle components for each of the materials and the loadings for
each as a function of time.我就在想怎样去做这个loadings for each as a
function of time,是指用PLS-toolbox可以生成4个新的谱图,每个谱图有40多个
overlaid spectra(我的original spectra 有40多个?就好像是#1谱图代表起始物从0时
刻到最终时刻的谱图?但是不对阿,横坐标是时间啊,loadings在这里指什么?不是指
pure component spectra吗?那如何与时间关联?用那种3-D的图解释吗?那我应该生
成4种3-D的图对吗?横坐标是wavenumber,纵坐标还是intensity,然后Z轴排列不同的图?
谢谢! |
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j******0
发帖数: 258 | 7 hau AH, Motz JT, Gardecki JA, Waxman S, Bouma BE, Tearney GJ. "Fingerprint
and high-wavenumber Raman spectroscopy in a human-swine coronary xenograft
in vivo".
J Biomed Opt 2008 July/August;13(4):040501. |
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C*********r
发帖数: 32 | 8 个人理解:
这些振动频率是C=O的,环越小,C=O localize得越好,k越大,所以wavenumber/振动
频率越大。 |
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y****o
发帖数: 50 | 9 请教大家~在FTIR spectrum, 上下 wavenumber shift 都可能代表什么呢? |
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y****o
发帖数: 50 | 10 非常感谢大家!!比如说amide bond, wavenumber变大变小都可能说明什么呢?和蛋白
质中的random coil 和 beta sheet 会有什么关系能?再次感谢~~ |
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l**j
发帖数: 651 | 11 inter/intra molecular interaction导致的vibrational frequency变化
wavenumber变的大的话也有人解释成alpha/beta/random互相乱变
反正红外的好处就是 想这么解释就这么解释 |
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r****y
发帖数: 1437 | 12 【 以下文字转载自 Science 讨论区 】
【 原文由 rossby 所发表 】
个人体会,也许对上面的那个问题有用。用过几次fft,发现一不小心还真爱出
错,估计是我水平太不照了。
1。 for real function f(x), ifft(fft(f(x))) != f(x), only
real(ifft(fft(f(x)))) = f(x), 计算中的round off errors很容易
产生很小的虚数项,~1e-14 to 1e-12.
1。 for f(x), ifft(fft(f(x)))= f(x), 这个没问题。但是要是你想通过
fft做微分,就得小心。比如用matlab, suppose你的数据是128个点,
y = fft(f, 128)
所得到的y还是128个值,前65个对应wavenumber 0, 1, 64, 后面的对应
-63, -62, ..., -1. 你要是以为后面的对应65, 66, 127,做微分的就会出错, |
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r****y
发帖数: 1437 | 13 hehe, are you studying radiative transfer or spectroscopy?
cm^{-1} for wavenumber
\mum for micron
个 |
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a*q
发帖数: 2109 | 14 【 以下文字转载自 Chemistry 讨论区,原文如下 】
发信人: abq (I Love JUNE), 信区: Chemistry
标 题: Spectroscopy Question
发信站: The unknown SPACE (Tue Aug 27 19:20:22 2002) WWW-POST
My FTIR spectrometer has a external sampling compartment.
But when I collect the spectra, they have spikes all over the 4000-400
wevemunber region. Equally spaced by about 200 wavenumbers.
There is nothing but three KBr plates in the beam path.
(These KBr plates are parallel to each other, and they all perpendicurlar to
the IR beam.)
What wou |
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w********h
发帖数: 12367 | 15 【 以下文字转载自 Chemistry 讨论区,原文如下 】
发信人: wonderlich (左岸,遁去), 信区: Chemistry
标 题: Re: quantum efficiency怎么算?
发信站: The unknown SPACE (Sun Mar 9 17:57:14 2003) WWW-POST
Fluorescence quantum efficiency is obtained by comparing
the intergration of the emission spectra (in wavenumbers)
of the samples (unknown) with that of a known standard in
the same optical configuration using the relation
fi (unknown)=[(As*Fu*n^2)/(Au*Fs*n0^2)]*fi (standard)
u, s means unknown and standard.
A is the absorbance at the e |
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c*******g
发帖数: 475 | 16 我把程序修改了一下
现在应该好用了, 至少读数据应该没问题了
%reverse engineering *.spa
clc
filename='c:\Documents and Settings\user
\My Documents\051109 sample B.SP
A';
fid=fopen(filename,'r');
% Find the points number
fseek(fid,hex2dec('234'),'bof');
Number_of_DataPoints=fread(fid,1,'int32');
%Find the maximum and minimum of Wavenumber (cm-1) range
fseek(fid,576,'bof');
Maximum_Wavenumber=fread(fid,1,'single');
Minimum_Wavenumber=fread(fid,1,'single');
Interval=(Maximum_Wavenumber-Minimum_Wavenumber)/(Number_of_DataPoints- |
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s*********d
发帖数: 13 | 17 又仔细看了一下,你这个横坐标有点让人抓狂
wavenumber = nm
拜托下次把图做好来再问
还有你这种缺陷太多的碳管,应该不能叫碳管了
那个小峰也许是杂质,也许是管子上的别的东西,也许是noise |
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r****y
发帖数: 1437 | 18 个人体会,也许对上面的那个问题有用。用过几次fft,发现一不小心还真爱出
错,估计是我水平太不照了。
1。 for real function f(x), ifft(fft(f(x))) != f(x), only
real(ifft(fft(f(x)))) = f(x), 计算中的round off errors很容易
产生很小的虚数项,~1e-14 to 1e-12.
1。 for f(x), ifft(fft(f(x)))= f(x), 这个没问题。但是要是你想通过
fft做微分,就得小心。比如用matlab, suppose你的数据是128个点,
y = fft(f, 128)
所得到的y还是128个值,前65个对应wavenumber 0, 1, 64, 后面的对应
-63, -62, ..., -1. 你要是以为后面的对应65, 66, 127,做微分的就会出错,
因为 d(exp(-ikx))/dx= -ik exp(-ikx), 这个k你就错了 |
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