NEET Practice Questions (MCQs) with Answers & Solutions

Practice free NEET NEET multiple-choice questions online with instant answers and detailed explanations. No login required.

All Physics Chemistry Botany Zoology
Register free to filter questions

According to Hückel's Rule, for a cyclic, planar molecule with complete delocalization of π electrons to be aromatic, the number of π electrons must be:

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

Aromaticity requires the presence of (4n + 2) π electrons in the ring where n is an integer (n = 0, 1, 2, . . .). This is often referred to as Hückel Rule.

What is the defining characteristic of an external electric field when considering the potential energy of a charge within it?

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

According to the NCERT text, 'The external field E is not produced by the given charge(s) whose potential energy we wish to calculate. E is produced by sources external to the given charge(s).' (Section 2.8.1).

The potential energy of a single charge 'q' at a point 'r' in an external electric field is given by:

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The NCERT states, 'Potential energy of q at r in an external field = qV(r) where V(r) is the external potential at the point r.' (Eq. 2.27 and accompanying text).

Which of the following statements is true regarding the influence of a charge 'q' on the external sources producing the electric field?

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The provided text mentions, 'We assume that the charge q does not significantly affect the sources producing the external field. This is true if q is very small, or the external sources are held fixed by other unspecified forces.' (Section 2.8).

If an electron with charge $q = e = 1.6 \times 10^{-19} C$ is accelerated by a potential difference of 1 Volt, what is the energy gained in Joules?

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The NCERT states, 'if an electron with charge $q = e = 1.6 \times 10^{-19} C$ is accelerated by a potential difference of $\Delta V = 1$ volt, it would gain energy of $q\Delta V = 1.6 \times 10^{-19} J$.' (Section 2.8.1).

What is the equivalent energy value of 1 MeV in Joules?

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The NCERT specifies energy units: '1 MeV = $10^6 eV = 1.6 \times 10^{-13} J$.' (Section 2.8.1).

For a system of two charges $q_1$ and $q_2$ located at $r_1$ and $r_2$ respectively, in an external field $V(r)$, the total potential energy of the system is given by:

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The total potential energy of the system is the sum of the work done in bringing each charge into the external field and the work done against the field of the other charge. The NCERT states, 'Potential energy of the system = the total work done in assembling the configuration $= q_1V(r_1) + q_2V(r_2) + \frac{1}{4\pi\epsilon_0} \frac{q_1q_2}{r_{12}}$' (Eq. 2.29).

When bringing a charge $q_2$ from infinity to a point $r_2$ in an external field and in the presence of another charge $q_1$ (already at $r_1$), the work done involves contributions from:

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The NCERT text explains: 'Next, we consider the work done in bringing $q_2$ to $r_2$. In this step, work is done not only against the external field E but also against the field due to $q_1$.' (Section 2.8.2).

A dipole with charges $+q$ and $-q$ is placed in a uniform electric field $E$. If the dipole moment $\vec{p}$ is perpendicular to $\vec{E}$ (i.e., $\theta = \pi/2$), and the potential energy is chosen to be zero at this angle, what is the potential energy when the dipole makes an angle $\theta$ with the field?

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

For a dipole in an external field, the potential energy is given by $U(\theta) = -pE \cos\theta$. This formula is derived by integrating the work done from an initial $\theta_0 = \pi/2$ (where $U=0$) to a final $\theta$. The NCERT states, 'We can then write, $U(\theta) = -pE \cos\theta$' (Eq. 2.32).

In a uniform electric field, an electric dipole experiences:

You've reached today's free limit of 20 questions. Log in to keep practising for free.
Explanation

The NCERT states, 'As seen in the last chapter, in a uniform electric field, the dipole experiences no net force; but experiences a torque $\vec{\tau} = \vec{p} \times \vec{E}$.' (Section 2.8.3).

Ready to ace NEET?

Free access · No credit card required

Frequently Asked Questions

Yes. You can attempt every NEET question on this page for free without logging in, and check the correct answer with a detailed explanation instantly.

No account is required to attempt questions and view answers. A free account adds bookmarks, personal notes, and progress tracking.

The bank mixes NEET previous year questions (PYQs) with practice questions, each tagged with its exam appearances where applicable.