Q.1 A molecule of H2 exists while that of the He2 does not. Explain.
Answer: Hydrogen atom (Z = 1) has only one electron present in the s-orbital(1s1). The two such half filled atomic orbitals combine to form a molecular orbital which contains both these electrons. But helium (Z = 2) has already a filled orbital (1s2). Therefore, the atomic orbitals of the helium atoms do not combine. Thus, a molecule of H2 exists while that of He2 does not.
Q.2 NaCl gives a white precipitate with AgNO3 solution but CCl4 does not. Why?
Answer: Both NaCl and AgNO3 are ionic solids and they readily dissociate to form ions in solution. Ag+ions combine with Cl− ions to give white precipitate of AgCl. But CCl4 is covalent compound and does not give Cl− ions in solution. Therefore, no reaction is possible between CCl4 and AgNO3.
Q.3 BeF2 and H2O are both tri-atomic molecules but have different shapes. Discuss.
Answer: According to VSEPR theory, the geometry and shape of a covalent molecule does not depend upon the number of atoms but on the number of the electron pairs around the central atom. Molecules with different number of such electron pairs are expected to have different shapes.
In BeF2, the Be atom is surrounded by two electron pairs while four pairs are present around O atom in H2O. Therefore, they have different shapes.
Q.4 Bond angle in NH3 is more than in PH3. Explain.
Answer: Both NH3 and PH3 are the hydrides of nitrogen and phosphorus which are present in group 15. Nitrogen is more electronegative (3.0) as compared phosphorus (2.1). As a result, the shared electron pairs lie closer to the nitrogen atom in NH3 than to the phosphorus atom in PH3. Therefore, the electron density around the nitrogen atom is more than around the phosphorus atom. This results in greater repulsion in the electron pairs around nitrogen atom than around phosphorus atom. As a result, bond angle in NH3 is more than in PH3.
Q.5 Why is HCl predominantly covalent in the gaseous state but is ionic in aqueous solution?
Answer: In HCl, the electro negativity difference in Cl and H atoms (3.0 - 2.1) is 0.9. Therefore, it is predominantly covalent in the gaseous state. When dissolved in water which is of polar nature, there is an attraction between the atoms of the acid and polar H2O molecules. Energy is released during attraction. This helps in the ionisation of the acid. Therefore, HCl is ionic in aqueous solution.
Q.6 Can a non-polar molecule have polar covalent bonds?
Answer: Yes, it is possible in case of molecules having linear and symmetrical shapes. In them, the bonds are polar but their polarities cancel out resulting in non-polar molecules. For example, in CO2(O=C=O) both the bonds are polar. But as it is linear in nature, the polarities of the bonds cancel and the molecule is non-polar in nature.
Q.7 Sigma bond is stronger than the pi bond. Explain.
Answer: The strength of a covalent bond depends upon the extent of the overlap. Greater the overlap, stronger is the bond. A sigma bond is formed by the axial overlap of the orbitals while pi bond by their sidewise or lateral overlap. Since the axial overlap is more effective than the sidewise overlap, greater energy is will be released in the axial overlap as compared to sidewise overlap. Therefore, sigma bond a stronger than the pi bond.
Q.8 A molecule of PCl5 exists while that of NCl5 does not.
Answer: The valence shell electronic configurations of both N and P are as follows :
Since nitrogen atom has no vacant 2d orbitals, it cannot extend its covalency to five. Therefore, a molecule of NCl5 does not exist. But in case of phosphorus, an electron can be promoted from 3s filled orbital to 3d vacant orbitals. Therefore, phosphorus can extend its covalency to five. Thus, a molecule of PCl5 can exist.
Q.9 o-nitrophenol is steam volatile while p-nitrophenol is not. Discuss.
Answer: In o-nitrophenol, intra molecular hydrogen bonding is present while inter molecular hydrogen is present in the molecules of p-nitrophenol. Energy is needed to overcome attractive forces in the molecules of p-nitrophenol but no such energy is required in case of molecules in o-nitrophenol. This means that the boiling point of o-nitrophenol is less and is steam volatile while that of p-nitrophenol is more and is, therefore, non-volatile in steam.
Q.10 KHF2 exists while KHCl2 does not. Explain.
Answer: HF molecules are hydrogen bonded as H−F....H−F...H−F.... Therefore, they can associate to form HF2− anion which can exist in combination with K+ ion as KHF2. But no hydrogen bonding is present in H−Cl molecules. Therefore the anion HCl−2 and KHCl2 do not exist.
Q.11 You are given the electronic configuration of five neutral atoms - A, B, C, D and E. A−1s22s22p63s2 ; B−1s22s22p23s1; C−1s22s22p1; D−1s22s22p5; E−1s22s22p6. Write the empirical formula for the substances containing (i) A and D (ii) B and D (iii) only D (iv) only E.
Answer: (i) The empirical formula for the compound containing A and D is AD2. This is because atom A has two valence electrons while D has seven electrons. Therefore, A donates two electrons to two atoms of D and the compound has the formula AD2. (ii) The empirical formula for the compound is BD because B loses one electron while D accept it. (iii) Two atoms of D can share one electron each to complete their octet. Therefore, the empirical formula of the compound is D2. (iv) Since E has the configuration of a noble gas (Ne), it is, therefore, mono atomic and exists as E.
Q.12 Boiling point of ethane is more than that of methane. Assign reason.
Answer: The molecular size of ethane (CH3−CH3) molecule is more than that of methane(CH4). Therefore, the van der Waals forces of attraction are more in ethane molecules than in molecules of methane resulting in higher boiling point.
Q.13 Which compound from each of the following pairs is more covalent and why? (a) CuO or CuS (b) AgCl or AgI (c) PbCl2 or PbCl4 (d) BeCl2 or MgCl2
Answer: This is explained with the help of Fazan's rules (a) CuS is more covalent than CuO because S2− ion is more polarised than the O2− ion due to bigger size. (b) AgI is more covalent than AgCl because I− ion is more polarised than Cl− ion due to bigger size. (c)PbCl4 is more covalent than PbCl2 because Pb4+ ion due to smaller size and greater magnitude of positive charge is more polarising than Pb2+ion. (d)BeCl2 is more covalent than MgCl2 because the Be2+ ion is more polarising than Mg2+ ion due to smaller size.
Q.14 The bond angles in NH+4 and CH4 are same but NH3 has different bond angle. Why?
Answer: In NH+4 ion as well as in CH4, the central atom has four shared pair of electrons. Therefore, both of them have almost the same bond angle (109°28'). But in NH3 molecule, due to the presence of three shared pairs and one lone pair, the geometry gets slightly distorted. As a result, the bond angle is 107∘.
Q.15 Predict which out of the following species are planar. (i)NH+4 (ii)CH+3 (iii)SF4 (iv)OF2 (v)H2O
Answer: The species will be planar if the central atom is sp2 hybridised. Let us calculate the hybridisation in all these species.
(i)NH+4:H=1/2[5+4−1+0]=4 (sp3-non-planar)
(ii)CH+3:H=1/2[4+3−1+0]=6/2=3 (sp2- planar)
(iii)SF4:H=1/2[6+4−0+0]=10/2=5 (sp3d- non-planar)
(iv)OF2:H=1/2[6+2−0+0]=8/2=4 (sp3- non-planar)
(v)H2O:H=1/2[6+2−0+0]=8/2=4 (sp3-non-planar)
Q.16 Why is MgCl2 molecule linear whereas the molecule of SnCl2 chloride has angular shape?
Answer: Let us find the hybridisation of central atom in both these molecules. In MgCl2, hybridisation of Mg=1/2[2+2−0+0]=4/2=2(sp) In SnCl2, hybridisation of Sn=1/2[4+2−0+0]=6/2=3(sp2) Thus, MgCl2 is linear while SnCl2 is expected to have planar geometry. However, the presence of a lone pair of electrons on Sn atom makes it angular.
Q.17 The hybridisation of oxygen in both water and diethyl ether molecules is the same but they differ in their bond angles. Explain.
Answer: In both the molecules, the oxygen atom is sp3 hybridised and the expected bond angle is 109∘28′. However, the presence of two lone pairs distorts the geometry of both these molecules. The bond angle in diethyl ether molecule is more than in case of water molecule because of greater repulsion in two C2H5 groups as compared to H atoms in the molecule of water.
Q.18 Both Na and H occur in group 1 of the periodic table ; yet melting point of NaCl is 800∘C while that of HCl is−114∘C. Why?
Answer: Though Na and H are present in the group 1, they differ in their electro negativities. The electro negativity of H is 2⋅1 and that of Na is 0⋅9. Due to large electro negativity difference between Na and Cl(3⋅0−0⋅9=2⋅1),NaCl is ionic in nature and exists as a crystalline solid with very high melting point (800°C). On the other hand, HCl is polar covalent due to small electro negativity difference(3⋅0−2⋅1=0⋅9) and exists in the gaseous state at room temperature. In order to solidify it, a very low temperature (−114∘C) is needed.
Q.19 Write the Lewis dot symbols and predict the valencies you expect for the following elements: Nitrogen, Fluorine and Neon
Answer:
Q.20 Out of NaCl and MgO, which has higher lattice energy and why?
Answer: MgO has higher lattice energy because each ion carries two unit charge whereas in NaCl each ion carries one unit charge
Q.21 Out of MgO, and CaO, which one is more hard and why?
Answer: MgO, is harder than CaO. This is because Mg2+ ions are smaller in size than Ca2+ ions. Hence, lattice energy of MgO is greater.
Q.22 Why an ionic bond is formed between two elements having large difference in their electro negativity?
Answer: The more electronegative element will attract the shared pair of electrons to such a large extent than the other that it will amount to transfer of electron resulting in the formation of ions.
Q.23 Is CaF2 linear or bent or neither of the two? Justify.
Answer: CaF2 is neither linear nor bent molecule because it is ionic compound and ionic bond is non-directional.
Q.24 Why NaCl gives a white precipitate with AgNO3 solution but CCl4 does not?
Answer: NaCl is an ionic compound and hence gives Cl− ions in the solution which combine with Ag+ ions given by AgNO3 to form a white precipitate of AgCl but CCl4 is a covalent compound and does not give Cl−ions.
Q.25 Define lattice enthalpy. How is it related to the stability of an ionic compound?
Answer: Definition-see page 4/7. Greater the lattice enthalpy of an ionic compound, greater is the stability.
Q.26 Why is solubility of MgCl2 much greater than that of MgF2?
Answer: Cl− ions are much larger in size that F− ions. Therefore, lattice enthalpy of MgCl2 is much smaller than that of MgF2 and the solubility is more.
Q.27 Draw the Lewis structures of the following molecules and ions and tell in which case/cases the octet rule is violated CO2,SO2,BeCl2,NH3,AlCl3,PCl5,CO2−3
Answer:
The octet rule is violated in case of BeCl2,AlCl3 and PCl5.
Q.28 On the basis of VSEPR theory, predict the shapes of the following molecules/ions? (i) SiF4 (ii) NH−2 (iii) NH+4 (iv) C2H2 (v) H3O+(vi) F2O (vii) PCl3 (viii) PF5.
Answer: (i) Tetrahedral (ii) V-shape (lii) Tetrahedral (iv) Cylindrical (v) Trigonal pyramidal (vi) V-shape (vii) Trigonal pyramidal (viii) Trigonal bipyramidal.
Q.29 Arrange the following in order of decreasing bond angle, giving reason : NO2,NO+2,NO−2
Answer: NO+2>NO2>NO−2. This is because NO+2 has no lone pair of electrons (i.e. has only bond pairs on two sides) and hence it is linear. NO2 has one unshared electron while NO−2 has one unshared electron pair. There are greater repulsions on N−O bonds in case of NO−2 than in case of NO2.
Q.30 Explain how the valence bond theory accounts for (i) a carbon-carbon double bond (C = C) (ii) a carbon-carbon triple bond (C≡C)
Answer:
Q.31 Explain how VB theory differs from Lewis concept.
Answer: (i) According to Lewis concept, a covalent bond is formed by mutual sharing of electrons whereas according to VB theory, a covalent bond is formed by the overlap of half-filled atomic orbitals containing electrons with opposite spin. (ii) VB theory can explain the shapes of molecules whereas Lewis concept cannot. (iii) VB theory can explain the strength of bonds whereas Lewis concept cannot.
Q.32 Out of σ and π-bonds, which one is stronger and why?
Answer: σ-bond is stronger. This is because σ-bond is formed by head-on overlapping of atomic orbitals and, therefore, the overlapping is large. π-bond is formed by sideway overlapping which is small.
Q.33 What order of C−H bond lengths do you expect in C2H6,C2H4 and C2H2 and why?
Answer: C−H(C2H6)>C−H(C2H4)>C−H(C2H2). This is because hybrid orbitals of carbon involved in overlapping with 1 s orbital of hydrogen are sp3,sp2 and sp respectively and their sizes are in the order sp3>sp2>sp .
Q.34 Which bond do you expect to be stronger in each of the following cases and why? (i) H−H,Cl−Cl (ii) O2,N2 (iii) F−F,Cl−Cl
Answer: (i) H-H is stronger because of smaller size of H-atoms. (ii)N≡N is stronger because it contains a triple bond while O2 contains a double bond (O=O). (iii) Cl−Cl is stronger because repulsions between the two F-atoms in F2 are larger on account of greater electron density around F-atom due to smaller size and hence greater repulsions between the two F-atoms.
Q.35 Arrange the following single bonds in order of bond energy giving reasons: C - C, N - N, O - O, F - F
Answer: C-C > N-N > O-O > F-F .
Q.36 Explain why dipole moment of hydrogen halides decreases from HF to HI.
Answer: This is because electro negativity of halogen atom decreases from F to I. Hence, the polar character decreases and so is the dipole moment.
Q.37 Represent diagrammatically the bond moments and the resultant dipole moments in (i) SO2 (ii) cis and trans forms of C2H2Cl2
Answer:
(i) (ii) (iii)
Q.38 Predict which out of the following molecules will have higher dipole moment and why? CS2 and OCS
Answer: both are linear molecules but bond moments in CS2 cancel out so that net dipole moment = 0. But in OCS, bond moment of C = O is not equal to that of C = S. Hence, it has a net dipole moment. Thus, dipole moment of OCS is higher.
Q.39 Indicate whether the following statement is TRUE or FALSE. Justify your answer in not more than three lines: The dipole moment of CH3F is greater than that of CH3Cl
Answer: False because no doubt C−F bond is more polar than C−Cl bond due to greater electro negativity of F than Cl but C ? F bond length is much smaller than C−Cl bond length.
Q.40 Which is more polar CO2 or N2O? Give reason.
Answer: N2O is more polar than CO2. This is because CO2 is linear and symmetrical. Its net dipole moment is zero .N2O is linear but unsymmetrical. It is considered as a resonance hybrid of the following two structures: It has a net dipole moment of 0.116 D.
Q.41 Why reaction between NaCl and AgNO3 is very fast but reaction between H2 and Cl2 is slow?
Answer: NaCl and AgNO3 are ionic compounds. In solution, NaCl gives Na+ and Cl− ions and AgNO3 gives Ag+and NO−3 ions. The oppositely charged Ag+ and Cl− ions combine immediately. The reaction between H2and Cl2 involves breaking of covalent bonds which requires energy.
Q.42 Why AlF3 is a high melting solid whereas SiF4 is a gas?
Answer: AlF3 is an ionic compound whereas SiF4 is a non-polar covalent compound. Hence, inter particle forces in AlF3 are much stronger.
Q.43 Draw the shapes of the following hybrid orbitals ; sp,sp2 and sp3
Answer:
All the hybrid orbitals have same shape. However, their sizes are in the order sp<sp2<sp3
Q.44 Name the type of hybridisation of each C-atom in a molecule of (i) propylene (propene) (ii) propyne. How many σ and π-bonds are present in each case?
Answer:
bonds =8,π-bonds = 1. (ii) C−2and C−3 are sp), σ- bonds = 6, π-bonds = 2.
Q.45 Why NF3 is pyramidal but BF3 is triangular planar?
Answer: In NF3,N has the hybridisation sp3 with one position occupied by lone pair of electrons but in BF3,B has the hybridisation sp2.
Q.46 Out of p-orbital and sp-hybrid orbital which has greater directional character and why?
Answer: sp-orbital has greater directional character than p-orbital. This is because p-orbital has equal sized lobes with equal electron density in both the lobes whereas sp-hybrid orbital has greater electron density on one side.
Q.47 What angles are associated with the following orbitals? sp,sp2 and sp3
Answer: sp=180∘,sp2=120∘,sp3=109∘28′.
Q.48 Which d-orbital is involved in sp3d hybridisation and why?
Answer: dz2. The three planar triangular hybrid orbitals may be assumed to be formed from one s and two p-orbitals (sp2) and the remaining p-orbital may combine with dz2 to form two axial hybrid orbitals.
Q.50 Which d-orbital is involved in dsp2 hybridisation and why?
Answer: dx2−y2. This is because its four lobes lie along the x-axis and y-axis. The two p-orbitals can combine along these axes.
Q.51 In the following molecule: arrange the carbon atoms numbered C−1, C−2, and C−3 in the decreasing order of s-character.Answer: Hybridisation: C−1=sp, C−2=sp3, C−3=sp2. Hence, s-character will be in the order:
Q.52 What is the hybrid state of BeCl2? What will be the change in the hybrid state of BeCl2 in the solid state?
Answer: In the vapour state at high temperature, BeCl2 exists as a linear molecule, Cl−Be−Cl. The hybridization of the central atom is sp. In the solid state, it has a polymeric structure with chlorine bridges as follows:
Structure of BeCl2
Two Cl atoms are linked to the Be atom by two coordinate bonds and two by covalent bonds. For these bonds to be formed. Be excited with the configuration 1s22s12p1x2p0y2p0z undergoes sp3 hybridization. Two half-filled hybrid orbitals will form normal covalent bonds with two Cl atoms. The other two Cl atoms are coordinated to the Be atom by donating electron pairs into the empty hybrid orbitals.
Q.53 Arrange the following in order of decreasing bond angles (i)CH4, NH3, H2O, BF3, C2H2 (ii) NH3,NH−2,NH+4
Answer: (i) NH3(107∘)>H2O>(104.5∘). (ii)NH+4>NH3>NH−2 This is because all of them involve sp3 hybridization. The number of lone pairs of electrons present on the N-atom are 0, 1, and 2 respectively. The greater the number of lone pairs, the greater the repulsions on the bond pairs, and hence smaller the angle.
Q.54 Write the structure of an anion which is isostructural with BF3 and the structure of a cation which is isostructural with CH4
Answer: (i) NO−3 (Triangular planar) (ii) NH+4 (tetrahedral)
Q.55 In SF4 molecule, the lone pair of electrons occupies an equatorial position rather than axial position in the overall trigonal bipyramidal arrangement. Why?
Answer: The lp−bp repulsions are less if it occupies equatorial position than if it occupies axial position. As a result, energy is less and stability is more
Q.56 Why axial bonds of PCl5 are longer than equatorial bonds?
Answer: This is due to greater repulsion on the axial bond pairs by the equatorial bond pairs of electrons.
Q.57 Which of the following species have same shape/same bond order? N−3,NO−2,CO2,O3
Answer: Isoelectronic species have same shape/same bond order. The number of outer electrons is same in CO2 and N−3 and same in O3 and NO−2.
Q.58 Write two resonating structures of N2O that satisfy the octet rule.
Answer:
Q.59 Taking Z-axis as the inter nuclear axis, explain why 2px or 2py orbital does not combine with 2s orbital to form molecular orbitals?
Answer: The small ++ overlap cancels the +- overlap. Hence, there is no net overlapping.
Q.60 Explain why N2 has greater bond dissociation energy than N+2 whereas O+2 has greater bond dissociation energy than O2.
Answer: B.O. of N2(3)>B.O. of N+2(2⋅5) but B.O. of O+2(2⋅5)>B.O. of O2(2). Greater the bond order, greater is the bond dissociation energy.
Q.61 Can we have a diatomic molecule with its ground state molecular orbitals full with electrons? Give a reason for your answer.
Answer: No. Because bond order becomes zero, e.g., in case of He2,Be2,Ne2, etc. Note that in H2,σ1sM.O.is full but σ∗1sis empty.
Q.62 Out of H and H2, the latter has higher first ionization energy while out of O and O2, the former has higher first ionization energy. Explain why.
Answer: In H2, first electron has to be removed from σ(1s) which has lower energy (more stable) than H-atom. In O2, first electron has to be removed from π∗(2px) or π∗(2py) orbital which has higher energy than 2 p-orbital of O-atom.
Q.63 Give reason for the following: H+2 and H−2 ions have the same bond order but H+2 ions are more stable than H−2.
Answer: H−2 has one electron in the anti bonding σ∗1s molecular orbital due to which there is some destabilizing effect and hence is less stable than H+2 ion (which has no electron in the anti bonding orbital).
Q.64 Compare the relative stabilities of O−2 and N+2 and comment on their magnetic (paramagnetic or diamagnetic) behaviour.
Answer: M.O. Electronic configuration of
Bond order=
M.O. Electronic configuration of
Bond order =
As the bond order of N+2> the bond order of O−2, therefore, N+2 is more stable than O−2. Each of them contains unpaired electrons, hence both are paramagnetic.
Q.65 (a) How bond energy varies from N−2 to N+2 and why? (b) On the basis of molecular orbital theory what is similarity between (i) F2,O−−2(ii) CO,N2,NO+?
Answer: (a) Bond energy of N+2= Bond energy of N−2. This is because they have the same bond order. (Strictly speaking, N−2 is slightly less stable and hence has less bond energy than N+2 due to presence of greater number of electrons in the anti bonding molecular orbitals) (b) (i) Same bond order and bond length, (ii) Same bond order and bond length.
Q.66 N2 has higher bond order than NO. Explain.
Answer: Bond order of N2=3 . Bond order of NO=2 1/2
Q.67 Why KHF2 exists but KHCl2 does not?
Answer: Due to H-bonding in HF, we have H−F------H−F------H−F------ This can dissociate to give HF−2 ion and hence KHF2 exists but there is no H-bonding in H−Cl. So HCl−2 ion does not exist and hence KHCl2 also does not exist.
Q.68 When we move from HF to HCl, the boiling point drops sharply but on moving further to HBr and HI the boiling point increases. Why? or Out of HF,HCl,HBr and HI, which has lowest boiling point and why?
Answer: In H−F there is H-bonding. Hence, the boiling point is high. There is no H-bonding in HCl. So the boiling point is less. On moving further to HBr and HI, the size of the molecule increases and so the van der Waals forces increase and so does the boiling point. Hence, HCl has the lowest boiling point.
Q.69 Ethanol has higher boiling point than diethyl ether or ethyl amine. Why?
Answer: In ethanol, there is H-bonding but in diethyl ether, there is no H-bonding (because O-atom is attached to C-atom) and in case of ethyl amine, the H-bonds formed by N-atom are weaker than those formed by O-atom.
Q.70 How many H-bonds are formed by each H2O molecule and how many water molecules are attached to each water molecule and in what direction?
Answer: Each H2O molecule forms four H-bonds, two with O-atom and two with H-atoms. Further, each H2O molecule is linked to four H2O molecules through H-bonds tetrahedrally.
Q.71 Out of o-nitro phenol and p-nitro phenol, which has higher boiling point and why?
Answer: p-nitro phenol has higher boiling point because there is intermolecular H-bonding while in o-nitro phenol, there is intra molecular H-bonding.
Q.72 Though Cl has nearly same electro negativity as N, yet there is no H-bonding in HCl. Why?
Answer: Chlorine atom has a large size.
Q.73 Why glucose, fructose, sucrose etc. are soluble in water though they are covalent compounds?
Answer: These compounds contain polar -OH groups which can form H-bonds with water.
Q.74 Explain why HF is less viscous than H2O.
Answer: There is greater intermolecular hydrogen bonding in H2O than that in HF as each H2O molecule forms four H-bonds with other water molecules whereas HF forms only two H- bonds with other HF molecules. Greater the intermolecular H- bonding, greater is the viscosity. Hence, HF is less viscous than H2O.
Q.75 From each of the following pairs, select the molecule with higher value of the property mentioned against each pair: (i)NH3,PH3: bond angle (ii) NF3,NH3: dipole moment (iii) MgO,CaO: hardness (iv) HCl,HBr: ionic character
Answer: (i) NH3 (ii) NH3 (iii) MgO (iv) HCl
Q.76 Account for the following: The experimentally determined N−F bond length in NF3 is greater than the sum of the single covalent radii of N and F.
Answer: This is because both N and F are small and hence have high electron density. So they repel the bond pairs thereby making the N-F bond length larger.
Q.77 Why NaCl is a bad conductor of electricity in the solid state?
Answer: In the solid state, Na+and Cl− ions are not free.
Q.78 Why two hydrogen atoms combine to form H2 but two helium atoms do not combine to form He2?
Answer: on the basis of (i) New forces of attraction and repulsion and (ii) orbital concept).
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