Difference between revisions of "2021 AMC 12A Problems/Problem 13"

Revision as of 14:58, 21 May 2021

1 Problem
2 Solution 1 (Degrees)
3 Solution 2 (Radians)
4 Solution 3 (Binomial Theorem)
- 4.1 Solution 3.1 (Real Parts Only)
- 4.2 Solution 3.2 (Full Expansions)
5 Video Solution by Punxsutawney Phil
6 Video Solution by Hawk Math
7 Video Solution by OmegaLearn (Using Polar Form and De Moivre's Theorem)
8 Video Solution by TheBeautyofMath
9 See Also

Problem

Of the following complex numbers $z$ , which one has the property that $z^5$ has the greatest real part?

$\textbf{(A) }-2 \qquad \textbf{(B) }-\sqrt3+i \qquad \textbf{(C) }-\sqrt2+\sqrt2 i \qquad \textbf{(D) }-1+\sqrt3 i\qquad \textbf{(E) }2i$

Solution 1 (Degrees)

First, $\textbf{(B)} = 2\text{cis}(150), \textbf{(C)} =2\text{cis}(135)$ $, \textbf{(D)} =2\text{cis}(120)$ .

Taking the real part of the 5th power of each we have:

$\textbf{(A): }(-2)^5=-32$ ,

$\textbf{(B): }32\cos(650)=32\cos(30)=16\sqrt{3}$

$\textbf{(C): }32\cos(675)=32\cos(-45)=16\sqrt{2}$

$\textbf{(D): }32\cos(600)=32\cos(240)$ which is negative

$\textbf{(E): }(2i)^5$ which is zero

Thus, the answer is $\boxed{\textbf{(B)}}$ . ~JHawk0224

Solution 2 (Radians)

We rewrite each answer choice to the polar form $z=re^{i\theta}.$ By De Moivre's Theorem, the real part of $z^5$ is $\mathrm{Re}\left(z^5\right)=r^5\cos{(5\theta)}.$ We construct a table as follows: $\begin{array}{c|ccc|ccc|cclclclcc} & & & & & & & & & & & & & & & \\ [-2ex] \textbf{Choice} & & \boldsymbol{r} & & & \boldsymbol{\theta} & & & & & & \hspace{0.75mm} \boldsymbol{\mathrm{Re}\left(z^5\right)} & & & & \\ [0.5ex] \hline & & & & & & & & & & & & & & & \\ [-1ex] \textbf{(A)} & & 2 & & & \pi & & & &32\cos{(5\pi)}&=&32\cos\pi&=&32(-1)& & \\ [2ex] \textbf{(B)} & & 2 & & & \tfrac{5\pi}{6} & & & &32\cos{\tfrac{25\pi}{6}}&=&32\cos{\tfrac{\pi}{6}}&=&32\left(\tfrac{\sqrt3}{2}\right)& & \\ [2ex] \textbf{(C)} & & 2 & & & \tfrac{3\pi}{4} & & & &32\cos{\tfrac{15\pi}{4}}&=&32\cos{\tfrac{7\pi}{4}}&=&32\left(\tfrac{\sqrt2}{2}\right)& & \\ [2ex] \textbf{(D)} & & 2 & & & \tfrac{2\pi}{3} & & & &32\cos{\tfrac{10\pi}{3}}&=&32\cos{\tfrac{4\pi}{3}}&=&32\left(-\tfrac{1}{2}\right)& & \\ [2ex] \textbf{(E)} & & 2 & & & \tfrac{\pi}{2} & & & &32\cos{\tfrac{5\pi}{2}}&=&32\cos{\tfrac{\pi}{2}}&=&32\left(0\right)& & \\ [1ex] \end{array}$ Clearly, the answer is $\boxed{\textbf{(B) }-\sqrt3+i}.$

~MRENTHUSIASM

Solution 3 (Binomial Theorem)

We evaluate the fifth power of each answer choice:

For $\textbf{(A)},$ we have $(-2)^5=-32,$ from which $\mathrm{Re}\left((-2)^5\right)=-32.$

For $\textbf{(E)},$ we have $(2i)^5=32i,$ from which $\mathrm{Re}\left((2i)^5\right)=0.$

We will apply the Binomial Theorem to each of $\textbf{(B)},\textbf{(C)},$ and $\textbf{(D)}.$

Two solutions follow from here:

Solution 3.1 (Real Parts Only)

To find the real parts, we only need the terms with even powers of $i:$

For $\textbf{(B)},$ we have

$\begin{align*} \mathrm{Re}\left(\left(-\sqrt3+i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}\left(-\sqrt3\right)^{5-2k}i^{2k} \\ &=\binom50\left(-\sqrt3\right)^{5}i^{0} + \binom52\left(-\sqrt3\right)^{3}i^{2} + \binom54\left(-\sqrt3\right)^{1}i^{4} \\ &=1\left(-9\sqrt3\right)(1)+10\left(-3\sqrt3\right)(-1)+5\left(-\sqrt3\right)(1) \\ &=16\sqrt3. \end{align*}$

For $\textbf{(C)},$ we have

$\begin{align*} \mathrm{Re}\left(\left(-\sqrt2+\sqrt2 i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}\left(-\sqrt2\right)^{5-2k}\left(\sqrt2i\right)^{2k} \\ &=\binom50\left(-\sqrt2\right)^5\left(\sqrt2i\right)^0+\binom52\left(-\sqrt2\right)^3\left(\sqrt2i\right)^2+\binom54\left(-\sqrt2\right)^1\left(\sqrt2i\right)^4 \\ &=1\left(-4\sqrt2\right)(1)+10\left(-2\sqrt2\right)(-2)+5\left(-\sqrt2\right)(4) \\ &=16\sqrt2. \end{align*}$

For $\textbf{(D)},$ we have

$\begin{align*} \mathrm{Re}\left(\left(-1+\sqrt3 i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}(-1)^{5-2k}\left(\sqrt3i\right)^{2k} \\ &=\binom50(-1)^5\left(\sqrt3i\right)^0+\binom52(-1)^3\left(\sqrt3i\right)^2 + \binom54(-1)^1\left(\sqrt3i\right)^4 \\ &=1(-1)(1)+10(-1)(-3)+5(-1)(9) \\ &=-16. \end{align*}$ Clearly, the answer is $\boxed{\textbf{(B) }-\sqrt3+i}.$

~MRENTHUSIASM

Solution 3.2 (Full Expansions)

For $\textbf{(B)},$ we have $...$ from which $\mathrm{Re}\left(...\right)=....$

For $\textbf{(C)},$ we have $...$ from which $\mathrm{Re}\left(...\right)=....$

For $\textbf{(D)},$ we have $...$ from which $\mathrm{Re}\left(...\right)=....$

Clearly, the answer is $\boxed{\textbf{(B) }-\sqrt3+i}.$

~MRENTHUSIASM

Video Solution by Punxsutawney Phil

https://youtube.com/watch?v=FD9BE7hpRvg

Video Solution by Hawk Math

https://www.youtube.com/watch?v=AjQARBvdZ20

Video Solution by OmegaLearn (Using Polar Form and De Moivre's Theorem)

https://youtu.be/2qXVQ5vBKWQ

~ pi_is_3.14

Video Solution by TheBeautyofMath

https://youtu.be/ySWSHyY9TwI?t=568

~IceMatrix

2021 AMC 12A (Problems • Answer Key • Resources)
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Difference between revisions of "2021 AMC 12A Problems/Problem 13"

Revision as of 14:58, 21 May 2021

Contents

Problem

Solution 1 (Degrees)

Solution 2 (Radians)

Solution 3 (Binomial Theorem)

Solution 3.1 (Real Parts Only)

Solution 3.2 (Full Expansions)

Video Solution by Punxsutawney Phil

Video Solution by Hawk Math

Video Solution by OmegaLearn (Using Polar Form and De Moivre's Theorem)

Video Solution by TheBeautyofMath

See Also

@@ Line 55: / Line 55: @@
 * For <math>\textbf{(B)},</math> we have
 <cmath>\begin{align*}
-\mathrm{Re}\left(\left(-\sqrt3+i\right)^5\right)
+\mathrm{Re}\left(\left(-\sqrt3+i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}\left(-\sqrt3\right)^{5-2k}i^{2k} \\
+&=\binom50\left(-\sqrt3\right)^{5}i^{0} + \binom52\left(-\sqrt3\right)^{3}i^{2} + \binom54\left(-\sqrt3\right)^{1}i^{4} \\
+&=1\left(-9\sqrt3\right)(1)+10\left(-3\sqrt3\right)(-1)+5\left(-\sqrt3\right)(1) \\
+&=16\sqrt3.
 \end{align*}</cmath>
 * For <math>\textbf{(C)},</math> we have
 <cmath>\begin{align*}
-\mathrm{Re}\left(\left(-\sqrt2+\sqrt2 i\right)^5\right)
+\mathrm{Re}\left(\left(-\sqrt2+\sqrt2 i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}\left(-\sqrt2\right)^{5-2k}\left(\sqrt2i\right)^{2k} \\
+&=\binom50\left(-\sqrt2\right)^5\left(\sqrt2i\right)^0+\binom52\left(-\sqrt2\right)^3\left(\sqrt2i\right)^2+\binom54\left(-\sqrt2\right)^1\left(\sqrt2i\right)^4 \\
+&=1\left(-4\sqrt2\right)(1)+10\left(-2\sqrt2\right)(-2)+5\left(-\sqrt2\right)(4) \\
+&=16\sqrt2.
 \end{align*}</cmath>
 * For <math>\textbf{(D)},</math> we have
 <cmath>\begin{align*}
-\mathrm{Re}\left(\left(-1+\sqrt3 i\right)^5\right)
+\mathrm{Re}\left(\left(-1+\sqrt3 i\right)^5\right)&=\sum_{k=0}^{2}\binom{5}{2k}(-1)^{5-2k}\left(\sqrt3i\right)^{2k} \\
+&=\binom50(-1)^5\left(\sqrt3i\right)^0+\binom52(-1)^3\left(\sqrt3i\right)^2 + \binom54(-1)^1\left(\sqrt3i\right)^4 \\
+&=1(-1)(1)+10(-1)(-3)+5(-1)(9) \\
+&=-16.
 \end{align*}</cmath>
 Clearly, the answer is <math>\boxed{\textbf{(B) }-\sqrt3+i}.</math>