13.2
赤外線 (IR) 放射が共有結合分子を通過すると、結合は低振動レベルから高振動レベルに移行します。赤外線吸収をもたらす基本的な振動運動は、伸縮振動または曲げ振動に分類できます。
伸縮振動は、結合線に沿って発生する振動運動で、結合長または 2 つの結合原子間の距離を変更します。さらに、対称または非対称…
IR活性分子は、IR吸収をもたらす2つの基本的な振動モードを示します。
伸張振動はボンドラインに沿って発生し、ボンドの長さを変更することができます。ストレッチは、対称または非対称にすることができます。
曲げ振動はボンディング角度を変化させ、面内モードと面外モードに細分化されます。はさみと揺れは前者を表し、振ることとねじれは後者を表します。
n個の原子を含むエタノールのような非線形分子に許容される基本振動の総数は3n − 6であるが、HClのような線形分子に対して許容される基本振動は3n − 5である。
ボンドの伸張振動と曲げ振動は、特徴的な基本吸収周波数で発生し、基底状態から最も低いエネルギー励起状態へのボンドの励起を伴います。
基本吸収周波数の整数倍は、倍音と呼ばれます。
2つのIRアクティブ振動周波数の融合により、コンビネーションバンドが生成されます。
基本バンドと倍音バンドまたは組み合わせバンドとの相互作用によって生成される結合振動は、フェルミ共鳴を生成します。
View the full transcript and gain access to JoVE Core videos
Q1: What are the two main types of molecular vibrations in IR spectroscopy?
IR-active molecules exhibit stretching and bending vibrations. Stretching vibrations occur along the bond line and change bond length, while bending vibrations change bond angles without occurring along the bond line. Both types result in characteristic IR absorption when bonds transition from ground state to the lowest energy excited state.
Q2: How do symmetric and asymmetric stretching vibrations differ?
In symmetric stretching, two bonds elongate and contract together simultaneously. Asymmetric stretching involves one bond moving in one direction while another bond moves in the opposite direction. These different motions produce distinct peak splitting in IR spectra through IR spectrum peak splitting symmetric vs asymmetric vibrations.
Q3: What are the types of bending vibrations in IR spectroscopy?
Bending vibrations are classified as in-plane or out-of-plane modes. In-plane bending includes scissoring (symmetric) and rocking (asymmetric) motions. Out-of-plane bending comprises twisting (symmetric) and wagging (asymmetric) motions. These distinct bending modes contribute unique absorption frequencies to IR spectra and enable molecular identification.
Q4: How many fundamental vibrations are allowed for nonlinear and linear molecules?
Nonlinear molecules like ethanol containing n atoms allow 3n − 6 fundamental vibrations. Linear molecules such as HCl allow only 3n − 5 fundamental vibrations. This difference arises because linear molecules have one fewer rotational degree of freedom, reducing the number of independent vibrational modes available.
Q5: What is the difference between overtones and combination bands in IR spectroscopy?
Overtones are integral multiples of fundamental absorption frequencies generated by any physical vibration in a molecule. Combination bands result from the fusion of two IR-active vibrational frequencies. Both phenomena appear in IR spectra and provide additional information about molecular structure beyond fundamental absorption peaks.
Q6: What is Fermi resonance and how does it affect IR spectra?
Fermi resonance is a coupled vibration created by the interaction of a fundamental band with either an overtone or combination band. This interaction produces spectral features that differ from simple superposition of individual bands, affecting peak positions and intensities in IR spectra.
Q7: Why do stretching and bending vibrations occur at characteristic frequencies?
Stretching and bending vibrations occur at characteristic fundamental absorption frequencies because bonds have specific energy requirements to transition from ground state to the lowest energy excited state. These frequencies depend on bond strength, atomic masses, and molecular geometry, making them unique identifiers for different functional groups.