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Living cells 鈥減ump鈥 singly ionized sodium ions, Na+, from the inside of the cell to the outside to maintain a membrane potential 鈭哣membrane = Vin - Vout = - 70 mV. It is called pumping because work must be done to move a positive ion from the negative inside of the cell to the positive outside, and it must go on continuously because sodium ions 鈥渓eak鈥 back through the cell wall by diffusion. a. How much work must be done to move one sodium ion from the inside of the cell to the outside? b. At rest, the human body uses energy at the rate of approximately 100 W to maintain basic metabolic functions. It has been estimated that 20% of this energy is used to operate the sodium pumps of the body. Estimate鈥攖o one significant figure鈥攖he number of sodium ions pumped per second.

Short Answer

Expert verified

The amount the work must be done to move one sodium ion is 1.110-20J

The numbers of sodium ions arerole="math" localid="1648139356523" 2.01021ions

Step by step solution

01

Theory of  work done source

The equation of the potential energy is

U=q/V

where q is the charge and V is the potential difference.

V=70mV=7010-3Vq=1.610-19C

W=U

Applying all data in the above equation

02

The process to calculate the numbers of sodium ions 

Formula

Number of sodium ions= power required to pump sodium ions/ work done to move the sodium ions

N=20J1.110-20J=2.01021J

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Most popular questions from this chapter

What potential difference is needed to accelerate an electron from rest to a speed of 2.0106m/s?

The electron gun in an old TV picture tube accelerates electrons between two parallel plates 1.2 cm apart with a 25 kV potential difference between them. The electrons enter through a small hole in the negative plate, accelerate, then exit through a small hole in the positive plate. Assume that the holes are small enough not to affect the electric field or potential.

a. What is the electric field strength between the plates?

b. With what speed does an electron exit the electron gun if its entry speed is close to zero?

Note: The exit speed is so fast that we really need to use the theory of relativity to compute an accurate value.

Your answer to part b is in the right range but a little too big.

A water molecule perpendicular to an electric field has 1.010-21J more potential energy than a water molecule aligned with the field. The dipole moment of a water molecule is 6.210-30Cm. What is the strength of the electric field?

A room with 3.0-m-high ceilings has a metal plate on the floor with V = 0 V and a separate metal plate on the ceiling. A 1.0 g glass ball charged to +4.9 nC is shot straight up at 5.0 m/s. How high does the ball go if the ceiling voltage is (a) +3.0106Vand (b) -3.0106V?

A proton with an initial speed of 800,000m/sis brought to rest by an electric field.

a. Did the proton move into a region of higher potential or lower potential?

b. What was the potential difference that stopped the proton?

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