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Ch.8 - Basic Concepts of Chemical Bonding
Brown - Chemistry: The Central Science 15th Edition
Brown15th EditionChemistry: The Central ScienceISBN: 9780137542970당신이 사용하는 게 아니라요?교과서 변경
8장, 문제 40

Place the following pairs of elements in order from smallest to largest difference in electronegativity: K and F, S and O, Br and I, Ca and Se, Li and Cl.

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1
Step 1: Understand the concept of electronegativity. Electronegativity is a measure of the tendency of an atom to attract a bonding pair of electrons.
Step 2: Identify the electronegativity values for each element using the Pauling scale. For example, F (Fluorine) has an electronegativity of 3.98, K (Potassium) has 0.82, etc.
Step 3: Calculate the difference in electronegativity for each pair of elements. For instance, for K and F, subtract the electronegativity of K from that of F.
Step 4: Compare the calculated differences for each pair to determine the order from smallest to largest difference.
Step 5: Arrange the pairs in order based on the differences calculated in Step 4.

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주요 개념

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Electronegativity

Electronegativity is a measure of an atom's ability to attract and hold onto electrons in a chemical bond. It is a key factor in determining the nature of bonds between atoms, influencing whether they will form ionic or covalent bonds. The Pauling scale is commonly used to quantify electronegativity values, with higher values indicating a stronger attraction for electrons.
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Electronegativity Trends

Difference in Electronegativity

The difference in electronegativity between two atoms can help predict the type of bond they will form. A larger difference typically indicates an ionic bond, while a smaller difference suggests a covalent bond. By calculating the electronegativity differences for the given pairs, one can rank them from smallest to largest, providing insight into their bonding characteristics.
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가이드 코스
02:10
Electronegativity Trends

Periodic Trends

Periodic trends refer to the predictable patterns observed in the properties of elements across the periodic table. Electronegativity generally increases across a period from left to right and decreases down a group. Understanding these trends is essential for comparing the electronegativities of different elements and determining their relative differences.
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Periodic Trends