मराठी
कर्नाटक बोर्ड पी.यू.सी.पीयूसी विज्ञान इयत्ता ११

Would you expect the first ionization enthalpies for two isotopes of the same element to be the same or different? Justify your answer.

Advertisements
Advertisements

प्रश्न

Would you expect the first ionization enthalpies for two isotopes of the same element to be the same or different? Justify your answer.

थोडक्यात उत्तर
Advertisements

उत्तर १

The ionization enthalpy of an atom depends on the number of electrons and protons (nuclear charge) of that atom. Now, the isotopes of an element have the same number of protons and electrons. Therefore, the first ionization enthalpy for two isotopes of the same element should be the same.

shaalaa.com

उत्तर २

Ionization enthalpy, among other things, depends upon the electronic configuration (number of electrons) and nuclear charge (number of protons). Since isotopes of an element have the same electronic configuration and same nuclear charge, they have same ionization enthalpy.

shaalaa.com
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 3: Classification of Elements and Periodicity in Properties - EXERCISES [पृष्ठ ९७]

APPEARS IN

एनसीईआरटी Chemistry - Part 1 and 2 [English] Class 11
पाठ 3 Classification of Elements and Periodicity in Properties
EXERCISES | Q 3.25 | पृष्ठ ९७

संबंधित प्रश्‍न

Among the second period elements the actual ionization enthalpies are in the

order Li < B < Be < C < O < N < F < Ne.

Explain why Be has higher ΔiH than B?


Among the second period elements the actual ionization enthalpies are in the

order Li < B < Be < C < O < N < F < Ne.

Explain why O has lower ΔiH than N and F?


What are the various factors due to which the ionization enthalpy of the main group elements tends to decrease down a group?


The first ionization enthalpy values (in kJmol–1) of group 13 elements are:-

B Al Ga In Tl
801 577 579 558 589

How would you explain this deviation from the general trend?


Those elements impart colour to the flame on heating in it, the atoms of which require low energy for the ionisation (i.e., absorb energy in the visible region of spectrum). The elements of which of the following groups will impart colour to the flame?

(i) 2

(ii) 13

(iii) 1

(iv) 17


Nitrogen has positive electron gain enthalpy whereas oxygen has negative. However, oxygen has lower ionisation enthalpy than nitrogen. Explain.


Explain the deviation in ionisation enthalpy of some elements from the general trend by using the given figure.


Explain the following:

Ionisation enthalpy decrease in a group from top to bottom?


Assertion (A): Generally, ionisation enthalpy increases from left to right in a period.

Reason (R): When successive electrons are added to the orbitals in the same principal quantum level, the shielding effect of inner core of electrons does not increase very much to compensate for the increased attraction of the electron to the nucleus.


Discuss and compare the trend in ionisation enthalpy of the elements of group1 with those of group17 elements.


In general, the property (magnitudes only) that shows an opposite trend in comparison to other properties across a period is ______. 


`"A"_0/2` atoms of X(g) are converted into X+(g) by absorbing energy E1. `"A"_0/2` ions of X+(g) are converted into X(g) with release of energy E2. Hence ionization energy and electron affinity of X(g) are ______.


The decreasing order of the second ionization potential of K, Ca and Ba is ______.


Which of the following atoms has the highest first ionization energy?


Arrange the following elements in increasing order of first ionization enthalpy:

Li, Be, B, C, N

Choose the correct answer from the options given below:


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×