NCERT Solutions Class 11 Maths Chapter 8

NCERT Solutions Class 11 Mathematics Chapter 8 – Binomial theorem

Class 11 is an important year academically for every student. Overall performance and marks during this year will help students to build the knowledge they need for Grade 12. It acts like a trial run for your board examinations because most of the syllabus and concepts covered in the NCERT syllabus will prepare the students for Class 12 examinations. 

Mathematics as a subject in Class 11 is very important. To make it easier for students to understand, Extramarks provides the NCERT Solutions Class 11 Mathematics Chapter 8. It is an important study material and is recommended by all teachers and professors. The solutions cover all important information such as theorems, derivations, formulas and more. The NCERT Solutions Class 11 Mathematics Chapter 8 talks about the Binomial theorem. This chapter is easy to understand. Regular practice of all solved examples and problems will help students to gain better score. 

Extramarks is an online learning platform which provides high-quality study materials such as NCERT Solutions Class 8, NCERT Solutions Class 9 and NCERT Solutions Class 10. These academic notes enhance students’ preparation and enable them to attain high scores in the exams. 

 

Key Topics Covered In NCERT Solutions Class 11 Mathematics Chapter 8

Students can completely depend on the NCERT Solutions for Class 11 Mathematics Chapter 8 provided by Extramarks, as all answers are explained in a detailed and well-structured manner. 

The following key topics are covered in the Class 11 Mathematics Chapter 8 Solutions:

Exercise Topic
5.1 Introduction
5.2 Binomial Theorem for Positive Integral Indices
5.3 General and Middle Terms

 

8.1 Introduction

The Chapter on binomial theorem helps students to evaluate numerical values of bigger numbers using the formulas of squares and cubes of a + b and a – b. The Binomial theorem overcomes the difficulty of using repeated multiplication. Using the NCERT Solutions Class 11 Mathematics Chapter 8, students will learn to expand (a + b)n, where n is either a rational number or an integer. 

 

8.2 Binomial Theorem for Positive Integral Indices

The following formulas are included in this section: 

  • (a + b)0 = 1,  where a + b ≠ 0
  • (a + b)1 = a + b
  • (a + b)2= a2+ 2ab + b2
  • (a + b)3= a3+ 3a2b + 3ab2 + b3
  • (a + b)4= a4+ 4a3b + 6a2b2 + 4ab3+ b4

Here students will also learn to distinguish index and coefficients and arrange them in the form of a triangle. Using these patterns, they will be able to write the expansion of any n in (a + b)n

Refer to the NCERT Solutions Class 11 Mathematics Chapter 8 to practice several sums based on this chapter.

 

Pascal’s Triangle

The array of numbers arranged in the form of a triangle is called Pascal’s triangle. It gives the coefficients for the expanded binomial of the form (a + b)n. The concepts of combination are used in this section. We know Crn= n!r! (n-r)!, 0rn and  C0n=Cnn=1. With the help of the pascal triangle, students can visualise the expansion of a binomial with respect to any positive integral index n in the form of combinations. 

 

Binomial theorem

In the NCERT Solutions Class 11 Mathematics Chapter 8, students will learn the formula for the expansion of (a + b)n using the binomial theorem, which is given by,

(a + b)n= C0nan+ C1nan-1bn+C2nan-2b2+….+ Cn-1nabn-1+bn

In this section, with the help of the principle of mathematical induction, the proof of the above formula is explained in a stepwise manner. It is important that students understand and practice this theorem well. Several observations given in this part are mentioned below:

  1. k=0nCknan-kbk is used to denote C0nan+ C1nan-1bn+C2nan-2b2+….+ Cn-1nabn-1+bn. Therefore we can say that (a + b)n= k=0nCknan-kbk 
  2. The coefficients of Crn are called binomial coefficients.
  3. The terms in the binomial expansion are always one more than the index. If the index is n, then there will be (n+1) terms in the expansion. 

Also, many special cases of the binomial theorem are explained in detail in the NCERT Solutions Class 11 Mathematics Chapter 8. Students can also practice the solved examples and exercise problems to understand the concept thoroughly. 

 

8.3 General and Middle terms

This section include a detailed explanation of the general terms, denoted by Tr+1. Some rules are mentioned below:

  • If n is even, the middle term will be (n2+1)th term. 
  • If n is odd, the two middle terms will be (n+12)th term and (n+12+1)th term. 
  • In the expansion of (x+1x)2n, the middle term will be (n+1)th term. 

The NCERT Solutions Class 11 Mathematics Chapter 8 includes unlimited practice problems for students to solve and become experts in this chapter. 

 

NCERT Solutions Class 11 Mathematics Chapter 8: Exercise & Solutions

Students can visit the Extramarks’ website to gain access to NCERT Solutions Class 11 Mathematics Chapter 8. Students can attain high scores in the annual examinations by practising the questions present in the solutions . In case of difficulty, they can refer to the step-by-step solutions to understand logic and know their mistakes. The solutions will help students to develop a better comprehension and deeper knowledge of the concepts through detailed answers to the textual questions. By using the NCERT Solutions Class 11 Mathematics Chapter 8, students will be able to tackle all questions as they will be well-versed with the method used to solve the equations in exams. 

The links mentioned below will provide the best study material, such as the NCERT Solutions Class 11 Mathematics Chapter 8- Binomial theorem. 

 

Extramarks also provides other study materials such as the NCERT Solutions Class 1 and NCERT Solutions Class 2. Several sample papers, questions papers, practice sheets and mock tests are available for students to analyse themselves based on their preparation level. Students appearing for grade 12 board exams must refer to the detailed NCERT Solutions Class 12, which adheres to the latest guidelines of the CBSE board. 

  • NCERT Solutions Class 1
  • NCERT Solutions Class 2
  • NCERT Solutions Class 3
  • NCERT Solutions Class 4
  • NCERT Solutions Class 5
  • NCERT Solutions Class 6
  • NCERT Solutions Class 7

 

NCERT Exemplar Class 11 Mathematics

The NCERT Exemplar provides a variety of quality problems of various difficulty levels. These problems are described in various formats for students to practice. It is beneficial for students to use the NCERT Solutions Class 11 Mathematics Chapter 8 and NCERT Exemplar notes for effective preparation. It covers the CBSE syllabus and prepares the aspirants for board exams as well as several competitive examinations such as JEE Main and JEE advanced. Several properties of the binomial theorem of positive integers can be studied with the help of the all-inclusive NCERT Solutions Class 11 Mathematics Chapter 8. 

 

Key Features of NCERT Solutions Class 11 Mathematics Chapter 8

  • The notes follow the NCERT textbook, marking system, weightage of each concept and the latest guideline issued by the board.
  • The NCERT Solutions Class 11 Mathematics Chapter 8 provides conceptual clarity with its well-explained and detailed solutions. 
  • The notes are prepared by expert teachers and professors after reviewing and analysing the question papers of past years’. 
  • It covers all the topics and sub-topics mentioned in the NCERT textbook. The solutions contain answers that are detailed, well-structured and explained in an easy language. 
  • The NCERT Solutions Class 11 Mathematics Chapter 8 enables students to establish a strong command of the Chapter. 

Q.1 Using binomial theorem, evaluate the following: (99)5

Ans

Since,(ab)n=nC0annC1an1b+nC2an2b2...+(1)n  nCnbn               (99)5=(1001)5So,   (1001)5=5C0(100)55C1(100)4(1)+5C2(100)3(1)2                                 5C3(100)2(1)3+5C4(100)1(1)45C5(1)5         =(1)(10000000000)(5)(100000000)(1) +(10)(1000000)(1)(10)(10000)(1) +(5)(100)(1)(1)(1)         =10000000000500000000+10000000 100000+5001         =9509900499

Q.2 Expand the expression: (1 – 2x)5.

Ans

Since,(1x)n=nC0nC1x+nC2x2...+(1)nnCnxnSo,    (12x)5=5C05C1(2x)+5C2(2x)25C3(2x)3+5C4(2x)45C5(2x)5         =110x+40x280x3+80x432x5

Q.3

Expand the expression: (2xx2)5.

Ans

Since, abn=nC0annC1an1b+nC2an2b2...+1nnCnbnSo,    2xx25=5C02x55C12x4x2+5C22x3x22                             5C32x2x23+5C42xx245C5x25         =132x5516x4x2+108x3x24104x2x38+52xx4161x532         =32x540x3+20x5x+58x3x532

Q.4 Expand the expression: (2x – 3)6.

Ans

Since,(ab)n=nC0annC1an1b+nC2an2b2...+(1)nnCnbnSo,    (2x3)6=  6C0(2x)66C1(2x)5(3)+6C2(2x)4(3)26C3(2x)3(3)3    +6C4(2x)2(3)46C5(2x)1(3)5+6C6(2x)0(3)6         =(1)26x66×25x5×3+15×24x4×3220×23x3×33 +15×22x2×346×21x1×35+(1)36         =64x6576x5+2160x44320x3+4860x2 2916x+729

Q.5

Expand the expression:    (x3+1x)5.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+  nCnbnSo,    (x3+1x)5=5C0(x3)5+5C1(x3)4(1x)+5C2(x3)3(1x)2                              +5C3(x3)2(1x)3+5C4(x3)(1x)4+5C5(1x)5         =(1)(x5243)+(5)(x481)(1x)+(10)(x327)(1x2)+(10)(x29)(1x3)+(5)(x3)(1x4)+(1)(1x5)         =x5243+5x381+10x27+109x+53x3+1x5

Q.6

Expand the expression:(x+1x)6.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+nnCnbnSo,    (x+1x)6=  6C0(x)6+6C1(x)5(1x)+6C2(x)4(1x)2+6C3(x)3(1x)3   +6C4(x)2(1x)4+6C5(x)1(1x)5+6C6(x)0(1x)6         =(1)x6+6×x4+15×x2+20+15×1x2+6×1x4+(1)1x6         =x6+6x4+15x2+20+15x2+6x4+1x6

Q.7 Using binomial theorem, evaluate the following: (96)3

Ans

Since,abn=nC0annC1an1b+nC2an2b2...+1nnCnbn  963=10043               =3C010033C1100314+3C210032423C31003343     =10000003×10000×4+3×100×161×1×64     =1000000120000+480064     =884736

Q.8 Using binomial theorem, evaluate the following: (102)5.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+  nCnbn             (102)5=(100+2)5So,  (100+2)5=5C0(100)5+5C1(100)4(2)+5C2(100)3(2)2                             +5C3(100)2(2)3+5C4(100)(2)4+5C5(2)5        =(1)(10000000000)+(5)(100000000)(2)+(10)(1000000)(4)+(10)(10000)(8)+(5)(100)(16)+(1)(32)        =10000000000+1000000000+40000000+800000  +8000+32        =11040808032

Q.9 Using binomial theorem, evaluate the following: (101)4

Ans

Since,a+bn=nC0an+nC1an1b+nC2an2b2+...+  nCnbn             1014=100+24So,  100+14=4C01004+4C110031+4C2100212                             +4C3100113+4C414        =1100000000+410000001+6100001+41001+11        =100000000+4000000+60000+400+1        =104060401

Q.10 Using Binomial Theorem, indicate which number is larger (1.1)10000 or 1000.

Ans

1.110000=1+0.110000        =1+100000.1+ higher powers ...        =1+1000+  higher powers ...        >1001        Leaving higher power terms           1001>1000So, 1.110000>1000.

Q.11

Find (a + b)4(ab)4. Hence, evaluate (3+2)4(32)4.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+  nCnbn(a + b)4(a – b)4=(4C0a4+4C1a3b+4C2a2b2+4C3a1b3+4C4b4)       (4C0a44C1a3b+4C2a2b24C3a1b3+4C4b4)     =4C0a4+4C1a3b+4C2a2b2+4C3a1b3+4C4b4       4C0a4+4C1a3b4C2a2b2+4C3a1b34C4b4     =  2(4C1a3b+4C3a1b3)     =  2(4a3b+4ab3)     =8(a3b+ab3)Putting a=3and b=2, we get(3+2)4(32)4     =8{(3)3(2)+(3)(2)3}     =8{36+26}     =8(56)     =406

Q.12

Find (x + 1)6+(x1)6. Hence or otherwise evaluate (2+1)6(21)6.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+nnCnbnSo,     (x+1)6=  6C0(x)6+6C1(x)5+6C2(x)4+6C3(x)3+6C4(x)2    +6C5(x)1+6C6(x)0          =(1)x6+6x5+15x4+20x3+15x2+6x+1            (x1)6=  6C0(x)66C1(x)5+6C2(x)46C3(x)3+6C4(x)2    6C5(x)1+6C6(x)0         =(1)x66x5+15x420x3+15x26x+1 (x + 1)6+(x – 1)6         =2x6+30x4+30x2+2         =2(x6+15x4+15x2+1)Putting x=2, we get(2+1)6(21)6         =2{(2)6+15(2)4+15(2)2+1}         =2(8+60+30+1)         =2(99)         =198

Q.13 Show that 9n+1 – 8n – 9 is divisible by 64, whenever n is a positive integer.

Ans

9n+1=1+8n+1      =1+n+18+n+1n2!82+n+1nn13!83+...  9n+118n8=n+1n2!82+n+1nn13!83+...         9n+18n9=82n+1n2!+n+1nn13!8+...         9n+18n9=64n+1n2!+n+1nn13!8+...9n+18n9=multiple of 64, because n is an integer.9n+18n9 is divisible by 64.

Q.14

Prove that r=0n3rnCr =4n.

Ans

L.H.S.=r=0n3rnCr=30nC0+31nC1+32nC2+33nC3+34nC4+...   =nC0.30+nC1.31+nC2.32+nC3.33+...   =(1+3)n[(1+x)n=nC0.x0+nC1.x1+nC2.x2                          +nC3.x3+...]   =4n=R.H.S.

Q.15 Find the coefficient of x5 in (x + 3)8.

Ans

The (r + 1)th term of the expansion (x + y)n is given by Tr +1= nCrxnryr.In​ the expansion of (x + 3)8, Tr +1= 8Crx8r 3rFor the coefficient of x5, let            8r=5                r=85=3So, the coefficient of x5=8C3 33=27×8!3!5!=27×8×7×6×5!3×2×1×5!=1512

Q.16 Find the coefficient of a5b7 in (a – 2b)12.

Ans

The (r + 1)th term of the expansion (x + y)n is given by Tr +1= nCrxnryr.In​ the expansion of (a2b)12, Tr +1= 12Cra12r(2b)rFor the coefficient of a5b7, let 12r=5 r=125 =7So, the coefficient of a5b7 =12C7(2)7 =128×12!7!5! =128×12×11×10×9×8×7!7!×5×4×3×2×1 =101376

Q.17 Write the general term in the expansion of (x2 – y)6.

Ans

The general term of (x2 y)6isTr+1=6Cr(x2)6r(y)r =(1)r6Cr(x)122r.yr

Q.18 Find the 4th term in the expansion of (x – 2y)12.

Ans

Let​ 4th term in the expression of (x2y)12 be T4, thenT4=T3+1      =12C3x123(2y)3      =12C3x9(2)3y3      =8×12!3!  9!x9y3      =8×12×11×10×9!3×2×1×  9!x9y3      =1760x9y3

Q.19

Find the 13th term in the expansion of  (9x13x)18, x0.

Ans

Let​ 13th term in the expression of 9x13x18 be T13, thenT13=T12+1       =18C129x181213x12       =18C1296x613121x6       =96312×18!12!  6!x61x6       =18×17×16×15×14×136×5×4×3×2×x6x6       =18564

Q.20

Write the general term in the expansion of (x2yx)12, x0.

Ans

The general term of (x2yx)12isTr+1=12Cr(x2)12r(yx)r =(1)r12Cr(x)242r.xr.yr =(1)r12Cr(x)24r.yr

Q.21

Find the middle term in the expansion of  (3x36)7.

Ans

(3x36)7Here,n=7(odd)So, middle terms in expansion=(7+12)thterm and (7+12+1)thterm=4th​ term and 5th termThen,  T4=T3+1=7C3.373.(x36)3=7C3.34.(16)3x9=35×27×336×6x9=1058x9and      T5=T4+1 =7C4.374.(x36)4=7C4.33(16)4x12=  35×2736×6×6x12=3548x12Thus, the middle terms of the expansion are 1058x9 and  3548x12.

Q.22

Find the middle term in the expansion of  (x3+9y)10.

Ans

Given:x3+9y10Here, n=10evenThe middle term in the expansion =102+1th term    =6th termThen, T6=T5+1 =10C5x310 59y5             =10!5!105!×x535×95y5             =10×9×8×7×6×5!5×4×3×2×1×5!×x535×310y5             =6×42×9×27x5y4             =61236 x5y5Thus, the middle term of given expression is 61236 x5y5.

Q.23 In the expansion of (1 + a)m+n, prove that coefficients of am and an are equal.

Ans

The given expression is (1+a)m+n.The general term(Tr+1)=m+nCrar...(i)Putting r=m in equation(i),wegetCoefficient of am=m+nCmPutting r=n in equation(i),wegetCoefficient of an=m+nCn=m+nCm+nn[nCr=nCnr]=m+nCmThus, the coefficient of am=the coefficient of an.

Q.24 The coefficients of the (r – 1)th, rth and (r + 1)th terms in the expansion of (x + 1)n are in the ratio 1 : 3 : 5. Find n and r.

Ans

The coefficients of the (r1)th, rth and (r+1)thterms in the expansion of (x+ 1)n are in the ratio 1:3:5.Then, Tr1=T(r2) +1=nCr2xn(r2)=n!(r2)!(nr+2)!x(nr+2)    Tr=T(r1) +1=nC(r1)xn(r1)=n!(r1)!(nr+1)!x(nr+1)  Tr+1=Tr       =nCrxnr=n!r!(nr)!x(nr)Since,Coefficient of Tr1Coefficient of Tr=n!(r2)!(nr+2)!n!(r1)!(nr+1)!         13=(r1)!(nr+1)!(r2)!(nr+2)!         13=(r1).(r2)!(nr+1)!(r2)!(nr+2).(nr+1)!          13=(r1)(nr+2)   nr+2=3r3       n4r=5...(i)Coefficient of TrCoefficient of Tr+1=n!(r1)!(nr+1)!n!r!(nr)!         35=r.(r1)!(nr)!(r1)!(nr+1).(nr)!         35=r(nr+1)       3n3r+3=5r             3n8r=3...(ii)On  solving equation(i) and equation(ii), we getn=7 and r=3.

Q.25 Prove that the coefficient of xn in the expansion of (1 + x)2n is twice the coefficient of xn in the expansion of (1 + x)2n – 1.

Ans

Given expressions are:  (1+x)2n and (1+x)2n-1For  (1+x)2n:Since, Tr+1=2nCrxrPutting r=n, we getcoefficient of xn=2nCn      =2n!n!(2nn)!     =2n!n!  n!     =2n(2n1)!n(n1)!  n!     =2×(2n1)!(n1)!  n!For  (1+x)2n-1:Since,       Tr+1=2n1CrxrPutting r=n, we getcoefficient of xn=2n1Cn     =(2n1)!n!(2n1n)!     =(2n1)!n!(n1)!Thus, coefficient of xn in (1+x)n is double of the coefficient of xn in (1+x)2n1.

Q.26 Find a positive value of m for which the coefficient of x2 in the expansion (1 + x)m is 6.

Ans

Given: Coefficient of x2 in the expansion of 1 +xmis 6.The (r + 1)th term of the expansion 1 +xm is given by       Tr+1=mCrxrPutting r=2, we getcoefficient of x2=mC2  6=m!2!m2!           6=mm1m2!2m2!         12=mm1     4×3=mm1      4×41=mm1m=4

Q.27 Find a, b and n in the expansion of (a + b)n if the first three terms of the expansion are 729, 7290 and 30375, respectively.

Ans

Three terms in the expansion of (a+b)n are 729, 7290 and 30375 respectively.          T1=729        T0+1=nC0anb0 nC0an=729           an=729 ...(i)         T2=7290          T1+1=nC1an1b1  nan1b=7290 ...(ii)          nanba=7290     n(729)ba=7290[From eqution(i)]                 nba=7290729                nba=10 ...(iii)             T3=30375            T2+1=30375    nC2an2b2=30375 n!2!(n2)!an2b2=30375    n(n1)2an2b2=30375 ...(iv)Dividing equation(iv) by equation(ii), we get       n(n1)2an2b2nan1b=303757290     (n1)ba=2×303757290         nbaba=253           10ba=253[From equation (ii)]                    ba=10253     ba=53From equation(iii), we get      n(53)=10    n=10×35       =6From equation (i), we havea6=729a6=36  a=3Putting the values of n and a in equation (iii), we get    6b3=10 b=102     =5Thus, a=3, b=5 and n=6.

Q.28 Find a, if the coefficients of x2 and x3 in the expansion of (3 + ax)9 are equal.

Ans

(r+1)th term in the expansion of (3+ax)9 is                       Tr+1=9Cr39r(ax)r ...(i)Putting r=2 in equation(i), we get                        T2+1=9C2392(ax)2coefficient of x2=9C237a2   =9!×372!(92)!a2Putting r=3 in equation(i), we get                      T3+1=9C3393(ax)3coefficient of x3=9C336a3   =9!×363!(93)!a3Since,  Coefficient of x3=coefficient of x2   9!×363!(93)!a3=9!×372!(92)!a2    a3=37    a=97Thus, the required value of a is 97.

Q.29 Find the coefficient of x5 in the product (1 + 2x)6 (1 – x)7 using binomial theorem.

Ans

Using binomial theorem, we have(1+2x)6=1+6(2x)+6.52!(2x)2+6.5.43!(2x)3+6.5.4.34!(2x)4 +6.5.4.3.25!(2x)5+6.5.4.3.2.16!(2x)6=1+12x+60x2+160x3+240x4+192  x5+64x6   (1x)7=17x+7.62!x27.6.53!x3+7.6.5.44!x47.6.5.4.35!x5   +7.6.5.4.3.26!x67.6.5.4.3.2.17!x7=17x+21x235x3+35x421x5+7x6x7Now,(1+2x)6(1x)7=(1+12x+60x2+160x3+240x4+192  x5+64x6)×(17x+21x235x3+35x421x5+7x6x7)Sum of the coefficients of x5=21+12×3560×35+160×21+240×7+192×1=21+4202100+33601680+192=171

Q.30 If a and b are distinct integers, prove that a – b is a factor of an – bn, whenever n is a positive integer.

Ans

Since, a=ab+bSo,   an=ab+bn           =ab+bn           =nC0abn+nC1abn1b+nC2abn2b2+...+              nCn1abbn1+nCnbn           =abn+nC1abn1b+nC2abn2b2+...+              nCn1abbn1+bn an bn=ababn1+nC1abn2b+nC2abn3b2+...+nCn1bn1            =abλ, where λ is an integer.Thus, ab is a factor of an bn.

Q.31

Evaluate:(3+2)6(32)6.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+nnCnbnPutting a=3, b=2 and  n=6, we get(3+2)6=6C0(3)6+6C1(3)61(2)+6C2(3)62(2)2   +6C3(3)63(2)3+6C4(3)64(2)4+6C5(3)65(2)5 +6C6(3)66(2)6  =27+6(3)5(2)+15(3)4(2)2+20(3)3(2)3   +15(3)2(2)4+6(3)(2)5+(2)6 (32)6=6C0(3)66C1(3)61(2)+6C2(3)62(2)2    6C3(3)63(2)3+6C4(3)64(2)46C5(3)65(2)5 +6C6(3)66(2)6    =276(3)5(2)+15(3)4(2)220(3)3(2)3          +15(3)2(2)46(3)(2)5+(2)6(3+2)6(32)6         =2{6(3)5(2)+20(3)3(2)3+6(3)(2)5}         =2{546+1206+246}         =2(1986)         =3966Thus,(3+2)6(32)6=3966.

Q.32

Find the value of (a2+a21)4+(a2a21)4.

Ans

Since,(a+b)n=nC0an+nC1an1b+nC2an2b2+...+nnCnbn(a2+a21)4=4C0(a2)4+4C1(a2)41(a21)+4C2(a2)42(a21)2                 +4C3(a2)43(a21)3+4C4(a2)44(a21)4            =(a2)4+4C1(a2)3(a21)+4C2(a2)2(a21)2                          +4C3(a2)(a21)3+(a21)4(a2a21)4=4C0(a2)44C1(a2)41(a21)+4C2(a2)42(a21)2                 4C3(a2)43(a21)3+4C4(a2)44(a21)4            =(a2)44C1(a2)3(a21)+4C2(a2)2(a21)2                 4C3(a2)(a21)3+(a21)4(a2+a21)4+(a2a21)4            =2{(a2)4+4C2(a2)2(a21)2+(a21)4}            =2{a8+6a4(a21)+(a21)2}            =2{a8+6a66a4+a42a2+1}            =2a8+12a6  10a44a2+2

Q.33 Find an approximation of (0.99)5 using the first three terms of its expansion.

Ans

0.995=10.015          =15C10.01+5C20.012          =150.01+100.0001          =10.05+0.001          =1.0010.05          =0.951Thus, an approximation of 0.995 using the first three  terms is 0.951.

Q.34

Find n, if the ratio of the fifth term from the beginning to the fifth term from the endin the expansion of  (24+134)n is 6:1.

Ans

We are given that:  24+134nTr+1=nCr24nr134rFor 5th term from starting:   T5=T4+1         =nC424n41344         =nC424n413For 5th term from end:Since, rth term from end=n+1r1So,      5th term from end=n+151Tn+1-5-1=Tn4+1         =nCn4244134n4         =nCnn+4244134n4nCr=nCnr         =nC42134n4         =nC42134n4According to given conditions:   T5Tn+151=61         nC424n413nC42134n4=61                 24n4132134n4=61                       64n4=661           6n44=632          n44=32        2n8=12       n=202        n=10

Q.35

Expand using Binomial Theorem  (1+x22x)4,  x0.

Ans

Using Binomial Theorem,  1+x22x4=4C01+x244C11+x232x1+4C21+x222x24C31+x212x3+4C42x4        =1+x2441+x232x+61+x224x2       41+x28x3+16x4        =1+4.x2+6.x24+4.x38+x4161+3.x2+3.x24+x388x +1+2.x2+x2424x21+x232x3+16x4         =1+4.x2+6.x24+4.x38+x4168x126xx2+24x2       +24x+632x316x2+16x4         =5+2x6xx2+32x2+x32+x4168x+24x+24x2 16x232x3+16x4         =54x+x22+x32+x416+16x+8x232x3+16x4         =16x+8x232x3+16x44x+x22+x32+x4165

Q.36 Find the expansion of (3x2 – 2ax + 3a2)3 using binomial theorem.

Ans

Using binomial theorem, we can expand3x22ax+ 3a23=3x22ax+ 3a23=3C03x2 2ax3+3C13x22ax23a21     +3C23x22ax13a22+3C33a23=3x22ax3+33x22ax23a2     +33x22ax19a4+27a6=3C03x233C13x222ax+3C23x212ax23C32ax3+9x412ax3+4a2x29a2   +81a4x254a5x+27a6= 27x639x42ax+33x24a2x2   8a3x3    +81a2x4108a3x3+36a4x2+81a4x254a5x    +27a6= 27x654ax5+36a2x48a3x3+81a2x4108a3x3+36a4x2+81a4x254a5x+27a6=27x654ax5+117a2x4116a3x3+117a4x254a5x+27a6

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FAQs (Frequently Asked Questions)

1. Will the NCERT Solutions Class 11 Mathematics Chapter 8 help students understand important concepts for the exam?

To understand the method of expansion, students are advised to refer to the solved examples present in the Class 11 Mathematics Chapter 8 Solutions before solving the exercise. Each solution is solved step-by-step to help students understand the concepts clearly. Practising regularly with the help of the NCERT Solutions Class 11 Mathematics Chapter 8 will enable the students to attain good scores in the exams. 

2. What are the important sub-topics included in the NCERT Solutions Class 11 Mathematics Chapter 8?

The important topics that are included in the NCERT Solutions Class 11 Mathematics Chapter 8- Binomial Theorem are mentioned below

8.1 Introduction

8.2 Binomial Theorem for Positive Integral Indices 

  • Pascal’s Triangle 
  • Binomial theorem 
  • Special cases

8.3 General and Middle Terms 

Several solved examples and exercise questions are solved thoroughly in the NCERT Solutions Class 11 Mathematics Chapter 8 to help students complete their preparation for the examinations.