Quantum Behavior in a Non-Bonded Interaction of BN (+, −, 0) B @ (5, 5) BN: Second-Order Jahn–Teller Effect Causes Symmetry Breaking
Abstract
1. Introduction
2. Theoretical Background
2.1. Quantum Theory of the BN (+, −, 0) B @ (5, 5) BNNT
2.2. The Interactions Between BNB and
3. Results and Computational Details
4. Discussion
4.1. Discussion on Structure
4.2. Discussion on Energy
4.3. Calculation of Physical Properties
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| State (* Ne) | Isolated BNB | Configuration (Energy of ** | electron Configuration Total Energy of Beta virtual ** | (*) in BNNT | * Dipole ** IFCC(N,B1,B2) isolated | * Dipole ** IFCC(N,B1,B2)in BNNT(non-isolated | |
( (* 17e) | =−0.24839 d ** | d | ( (*17e) | ||||
(*17e) | |||||||
(*18e) | - | ||||||
(*18e) | [C]= | = | 0 | 6 | |||
( | |||||||
| 3Σg (*16e) |
| State of BNB inside BNNT (+104) | All electron Configuration | electron in BNNT | ||
| Radical (17e) | ||||
| , | ||||
( | = * | , | ||
( | , | |||
| Anion (18e) | ||||
( | - | , | ||
| [C]= | , | |||
( | [C]= | , | ||
| Cation (16e) | ||||
| 3Σg ( | , | |||
| 3Σg ( | , | |||
| State of BNB | force+, angle of force vector, from ECP | “Isolated BNB” Charges from ESP fitting | |
| Radical | - - - - | , 0.806 a , 0.804 a , 0.807 a 0.806 a - - - - | |
Anion | - - - - | 0.232 0.228 0.232 0.242 - - - - | |
Cation | - - - - |
| + | |||||||||||||||
| Ground State | |||||||||||||||
| (Radical) | (Anion) | (Cation) | |||||||||||||
| 0.000 0.005 0.01 0.02 0.03 0.035 0.038 0.05 0.06 0.062 0.065 0.067 0.07 0.075 − − | 0.000 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.091 0.092 0.095 0.10 0.11 0.13 | 0.00 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.075 0.077 0.08 − − − − − | 0.00 0.01 0.02 0.03 0.04 0.05 − − − − − − − − − − | 0.00 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 0.09 0.10 0.12 0.14 0.17 0.20 0.25 | 0.00 0.01 0.02 0.03 0.04 0.05 0.06 0.07 0.08 − − − − − − − | 0.00 0.01 0.02 0.03 0.04 0.05 0.06 0.07 − − − − − − − − | 0.00 − − − − − − − − − − − − − − − | −13.342 −14.222 −14.139 −14.1780 −14.215 −14.965 −14.5463 −14.241 −14.431 −14.459 −14.432 −14.980 −3.544 −3.346 − − | −13.654 −14.399 −14.399 −14.356 −14.510 −14.549 −14.456 −14.587 −14.734 −14.555 −14.666666 −13.705 −13.704 −13.7080 −13.702 −13.799 | −3.073 −4.099 −3.765 −3.0999 −3.145 −3.126 −3.863 −4.123 −4.152 −3.299 − − − − − − | −1.5871 −1.700 −1.649 −1.599 −1.489 −1.555 − − − − − − − − − − | −5.443 −5.508 −5.499 −5.515 −5.543 −5.608 −5.609 −5.601 −5.587 −5.589 −5.599 −5.6999 −5.7345 −5.808 −5.865 −6.111 | −2.531 −2.699 −2.699 −2.709 −2.709 −2.709 −2.691 −2.698 −2.999 − − − − − − − | 0.362 0.211 0.249 0.245 0.265 0.275 0.301 0.309 − − − − − − − − | 0.809 − − − − − − − − − − − − − − − |
| Exited State | |||||||||||||||
| (Radical) | (Anion) | 3Σg (Cation) | |||||||||||||
| 0.00 0.01 0.02 0.03 0.05 0.052 0.055 0.06 0.09 | 0.00 0.01 0.04 0.06 0.08 0.10 - - - | 0.00 0.01 0.04 0.05 0.06 0.00 − − | −4.701 −4.691 −4.654 −4.632 −4.555 −4.765 −5.432 −5421 −5.343 | −7.763 −7.450 −7.324 −7.55 −7.618 −7.632 − − − | −3.432 −3.654 −3.243 −3.253 −3.643 − − − − | ||||||||||
| State (*Ne) | isolated BNB (re = 1.3176) IFCC for nitrogen | ASDF of non-isolated BNB | Hybrids Coefficient& | Atomic occupancies * | |||
| IFCC f( | IFCC f( | Baa, Bbb, Bcc | |||||
(*17e) | 0.0, 0.0 | −29.8, −29.8 | N f: −11.2, −9.4, 20.5 | * 0.094 * 0.089 * 0.029 | |||
| 0.02, 3.0 | −29.1, −29.8 | B f: −24.0, −21.0, 45.0 | |||||
| 0.04, 10.0 | −26.6, −29.8 | B f: −22.6, −19.8, 42.4 | |||||
| 0.06, 20.0 | −23.5, −29.9 | N g: −8.9, −8.9, 17.8 | |||||
| 0.08, 30.0 | −20.5, −29.9 | B g: −21.6, −21.4, 42.9 | |||||
| 0.085, 40. | −19.7, −29.6 | B g: −21.6, −21.4, 42.9 | |||||
(*18e) | - - - - - - | - - - - - - | - - - - - - | * 0.107 * 0.021 * 0.107 | - - - - | ||
| 3Σ+ (*16e) | - - - | - - - | N f: −10.5, 1.5, 9.0 - - | * 0.119 * 0.028 * 0.029 | - | ||
| - | - | B f: 26.3, −22.1, 48.5 | |||||
| B f: −27.4, −22.3, 49.8 | |||||||
(*18e) | N f: −10.7, −10.6, 21.3 | * 0.107 * 0.064 * 0.021 - - | - - - - | ||||
| B f: −15.5, −15.0, 30.5 | |||||||
| B f: −15.6, −15.1, 30.6 | |||||||
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Monajjemi, M.; Mollaamin, F. Quantum Behavior in a Non-Bonded Interaction of BN (+, −, 0) B @ (5, 5) BN: Second-Order Jahn–Teller Effect Causes Symmetry Breaking. Quantum Rep. 2025, 7, 58. https://doi.org/10.3390/quantum7040058
Monajjemi M, Mollaamin F. Quantum Behavior in a Non-Bonded Interaction of BN (+, −, 0) B @ (5, 5) BN: Second-Order Jahn–Teller Effect Causes Symmetry Breaking. Quantum Reports. 2025; 7(4):58. https://doi.org/10.3390/quantum7040058
Chicago/Turabian StyleMonajjemi, Majid, and Fatemeh Mollaamin. 2025. "Quantum Behavior in a Non-Bonded Interaction of BN (+, −, 0) B @ (5, 5) BN: Second-Order Jahn–Teller Effect Causes Symmetry Breaking" Quantum Reports 7, no. 4: 58. https://doi.org/10.3390/quantum7040058
APA StyleMonajjemi, M., & Mollaamin, F. (2025). Quantum Behavior in a Non-Bonded Interaction of BN (+, −, 0) B @ (5, 5) BN: Second-Order Jahn–Teller Effect Causes Symmetry Breaking. Quantum Reports, 7(4), 58. https://doi.org/10.3390/quantum7040058
