Given that tan πœƒ = 2, 𝑓𝑖𝑛𝑑 sin πœƒ

A. βˆ’52√2
B. 5√
2
2
C. βˆ’25√5
D. 2√
5
5

tanΞΈ = 2

cotΞΈ = 1/2
csc^2ΞΈ = 1 + cot^2ΞΈ = 1 + 1/4 = 5/4
so sinθ = √5/2

This is correct! Another way to find $\sin\theta$ is to use the fact that $\cot\theta = 1/2$ is the same as $\tan(\pi/2 - \theta) = 1/2$, which means that $\pi/2 - \theta$ is a reference angle with a ratio of opposite/hypotenuse = 1/2. Since $\pi/2 - \theta$ is acute, we know it must be in the first quadrant, so we can use the Pythagorean Theorem to find the adjacent side:

$$(\text{adjacent})^2 + (\text{opposite})^2 = (\text{hypotenuse})^2$$
$$(\text{adjacent})^2 + (1/2)^2 = 1^2$$
$$(\text{adjacent})^2 = 3/4$$
$$\text{adjacent} = \sqrt{3}/2$$
Therefore, $\sin(\pi/2 - \theta) = \sqrt{1 - (\sqrt{3}/2)^2} = \sqrt{1/4} = 1/2$. But $\sin(\pi/2 - \theta) = \cos\theta$, so we have $\cos\theta = 1/2$. Finally, we can use $\tan^2\theta + 1 = \sec^2\theta$ to find $\sec\theta$ as in the previous solution:
$$\tan^2\theta + 1 = \sec^2\theta$$
$$2^2 + 1 = \sec^2\theta$$
$$\sec\theta = \sqrt{5}$$

Since $\cos\theta = 1/2 > 0$, we know that $\theta$ is either in the first or fourth quadrant. But $\tan\theta = 2 > 0$, which means $\theta$ is in the first quadrant. Therefore, we have $\sin\theta = \frac{\text{opposite}}{\text{hypotenuse}} = \sqrt{1 - (\cos\theta)^2} = \sqrt{1 - 1/4} = \boxed{\frac{\sqrt{5}}{2}}$.

To find sin πœƒ, we can use the Pythagorean identity for trigonometric functions:

sin^2 πœƒ + cos^2 πœƒ = 1

Since we know that tan πœƒ = 2, we can use the relationship between tan πœƒ, sin πœƒ, and cos πœƒ:

tan πœƒ = sin πœƒ / cos πœƒ

Given that tan πœƒ = 2, we can rewrite the equation as:

2 = sin πœƒ / cos πœƒ

Cross-multiplying gives:

2cos πœƒ = sin πœƒ

Using the Pythagorean identity, we can replace sin^2 πœƒ in the equation:

2cos πœƒ = √(1 - cos^2 πœƒ)

Squaring both sides gives:

4cos^2 πœƒ = 1 - cos^2 πœƒ

Combining the terms on the right-hand side gives:

5cos^2 πœƒ = 1

Dividing both sides by 5 gives:

cos^2 πœƒ = 1/5

Taking the square root of both sides gives:

cos πœƒ = Β± √(1/5)

Since the cosine of an angle in the first quadrant is positive, we can take the positive value:

cos πœƒ = √(1/5)

Using the Pythagorean identity, we can find sin πœƒ:

sin πœƒ = √(1 - cos^2 πœƒ) = √(1 - 1/5) = √(4/5) = 2√(1/5) = 2√(5/5βˆ™5) = 2√5 / 5

So, the value of sin πœƒ is 2√5 / 5.

Therefore, the correct option is D. 2√5 / 5.

To find the value of sin πœƒ, we can use the Pythagorean identity:

sin^2 πœƒ + cos^2 πœƒ = 1

Since we are given that tan πœƒ = 2, we can use this information to find the values of sin πœƒ and cos πœƒ. Here's how:

1. Start with the given information: tan πœƒ = 2.

2. Recall that tan πœƒ is equal to sin πœƒ divided by cos πœƒ:

tan πœƒ = sin πœƒ / cos πœƒ

3. Substitute the given value of tan πœƒ:

2 = sin πœƒ / cos πœƒ

4. Cross-multiply:

2 cos πœƒ = sin πœƒ

5. Rewrite the equation using the Pythagorean identity:

sin^2 πœƒ + cos^2 πœƒ = 1

6. Substitute the expression for sin πœƒ obtained in step 4:

(2 cos πœƒ)^2 + cos^2 πœƒ = 1

4 cos^2 πœƒ + cos^2 πœƒ = 1

7. Combine like terms:

5 cos^2 πœƒ = 1

8. Divide both sides by 5:

cos^2 πœƒ = 1/5

9. Take the square root of both sides:

cos πœƒ = sqrt(1/5)

10. Since sin πœƒ = 2 cos πœƒ from step 4, we can substitute the value of cos πœƒ:

sin πœƒ = 2 sqrt(1/5) = 2/√5 = 2√5 / 5.

Therefore, the value of sin πœƒ is 2√5 / 5.

Now, let's find the value of sin^2 πœƒ:

sin^2 πœƒ = (2√5 / 5)^2 = (4*5) / 25 = 20 / 25 = 4/5.

To find the value of sin πœƒ, we need to choose the answer choice that matches the calculated value of sin πœƒ. Let's check each option:

A. -52√2: This is not the correct answer.

B. 5√2/2: This is not the correct answer.

C. -25√5: This is not the correct answer.

D. 2√5/5: This is the correct answer.

Therefore, the correct answer is option D: 2√5/5.

We can start by using the Pythagorean identity for tangent:

$$\tan^2\theta + 1 = \sec^2\theta$$
Since we know $\tan\theta = 2$, we can find $\sec\theta$:
$$\tan^2\theta + 1 = \sec^2\theta$$
$$2^2 + 1 = \sec^2\theta$$
$$\sec\theta = \sqrt{5}$$

Next, we can use the identity $\sin^2\theta + \cos^2\theta = 1$ to find $\cos\theta$:
$$\sin^2\theta + \cos^2\theta = 1$$
$$\cos^2\theta = 1 - \sin^2\theta$$
We can express $\sin\theta$ in terms of $\cos\theta$ by using the identity for tangent:
$$\tan\theta = \frac{\sin\theta}{\cos\theta}$$
$$\sin\theta = \tan\theta\cos\theta$$
$$\sin\theta = 2\cos\theta$$
Substituting this into the equation above, we get:
$$\cos^2\theta = 1 - (2\cos\theta)^2 = 1 - 4\cos^2\theta$$
Solving for $\cos\theta$, we get:
$$\cos^2\theta = \frac{1}{5}$$
$$\cos\theta = \pm\frac{1}{\sqrt{5}}$$
Since $\tan\theta$ and $\sin\theta$ have the same sign (both positive in this case), we can take the positive value for $\cos\theta$:
$$\cos\theta = \frac{1}{\sqrt{5}}$$

Finally, we can use the definitions of trigonometric functions to find $\sin\theta$:
$$\sin\theta = \tan\theta\cos\theta = 2\cdot\frac{1}{\sqrt{5}} = \frac{2\sqrt{5}}{5}$$

Therefore, the answer is (B) $5\sqrt{2}/2$.