REFERENCES

1. Lakzian, K. Comprehensive analysis of a major ammonium nitrate accident: causes, consequences, safety recommendations, and emergency response for ammonium nitrate incidents. Next. Res. 2025, 2, 100270.

2. Liu, T.; Li, X.; He, H.; et al. Bioinspired triboelectric droplet sensor for ammonia monitoring. Nat. Commun. 2026, 17, 2153.

3. Zhang, D.; Yu, S.; Wang, X.; et al. UV illumination-enhanced ultrasensitive ammonia gas sensor based on (001)TiO2/MXene heterostructure for food spoilage detection. J. Hazard. Mater. 2022, 423, 127160.

4. Kim, Y.; Lee, S.; Song, J.; et al. 2D transition metal dichalcogenide heterostructures for p- and n-type photovoltaic self-powered gas sensor. Adv. Funct. Mater. 2020, 30, 2003360.

5. Du, L.; Wang, X.; Sun, M.; et al. Polyurethane nonwovens integrated with nanocomposite as twist-assisted healing flexible sensor for ultrasensitive room-temperature NO2 detection. Adv. Mater. 2026, 38, e09512.

6. Jiang, Y.; Wang, Y.; Wang, T.; et al. Wireless wearable MOF-based NH3 gas sensor patch with a zeolite overlayer for suppressing NO2 interference. ACS. Sens. 2026, 11, 2656-67.

7. Zhou, M.; Xu, B.; Wang, D.; Wu, Z.; Zhang, L.; Cai, S. A wearable acetone gas sensor enabled by quantum dot-sensitized flower-like Ti3C2Tx for metabolic monitoring. ACS. Sens. 2026, 11, 157-67.

8. Yang, J.; Li, Y.; Zheng, Y.; et al. Versatile aerogels for sensors. Small 2019, 15, e1902826.

9. Zhou, J.; Zhang, J.; Sang, M.; et al. Advanced functional Kevlar composite with excellent mechanical properties for thermal management and intelligent safeguarding. Chem. Eng. J. 2022, 428, 131878.

10. Wang, Y.; Liu, J.; Zhao, Y.; et al. Temperature-triggered fire warning PEG@wood powder/carbon nanotube/calcium alginate composite aerogel and the application for firefighting clothing. Compos. Part. B. Eng. 2022, 247, 110348.

11. Hu, Z.; Wang, S.; Wu, J.; et al. Robust multi-scale bionic ANF/PMSQ aerogel featuring impact protection, thermal insulation and anti-icing functions. Compos. Part. B. Eng. 2025, 297, 112304.

12. Du, H.; Liu, K.; Xu, T.; et al. Lignocellulosic films: preparation, properties, and applications. Chem. Rev. 2025, 125, 11666-814.

13. Saleh, A. K.; El-Sayed, M. H.; El-Sakhawy, M. A.; et al. Cellulose-based conductive materials for bioelectronics. ChemSusChem 2025, 18, e202401762.

14. Gao, M.; Shang, Y.; Li, B.; Du, H. Sustainable preparation of cellulose nanocrystals: state of the art and perspectives. Green. Chem. 2022, 24, 9346-72.

15. Isogai, A.; Zhou, Y. Diverse nanocelluloses prepared from TEMPO-oxidized wood cellulose fibers: nanonetworks, nanofibers, and nanocrystals. Curr. Opin. Solid. State. Mater. Sci. 2019, 23, 101-6.

16. Xu, K.; Lv, Q.; Liu, L.; et al. Silicified wood-inspired, high-strength fire-resistant chitin-based aerogels for sustainable high-temperature thermal insulation. Adv. Funct. Mater. 2026, 36, e75626.

17. Zhao, Y.; Peng, C.; Yang, Z.; et al. Mechanically strong and flame-retardant cellulose-based aerogel prepared via phosphorylation-coupled Ca2+ coordination. Gels 2025, 11, 408.

18. Pan, X.; Wang, Y.; Xu, Z.; et al. Improving electronics stability via covalent-linked interfaces for ultra-robust pressure sensing array. Chem. Eng. J. 2024, 489, 151354.

19. Shi, X.; Fan, X.; Zhu, Y.; et al. Pushing detectability and sensitivity for subtle force to new limits with shrinkable nanochannel structured aerogel. Nat. Commun. 2022, 13, 1119.

20. Cheng, H.; Li, Y.; Wang, B.; et al. Chemical crosslinking reinforced flexible cellulose nanofiber-supported cryogel. Cellulose 2018, 25, 573-82.

21. Kuang, D.; Wang, L.; Guo, X., et al. Facile hydrothermal synthesis of Ti3C2Tx-TiO2 nanocomposites for gaseous volatile organic compounds detection at room temperature. J. Hazard. Mater. 2021, 416, 126171.

22. Tai, H.; Duan, Z.; He, Z., et al. Enhanced ammonia response of Ti3C2Tx nanosheets supported by TiO2 nanoparticles at room temperature. Sens. Actuators. B. Chem. 2019, 298, 126874.

23. Xu, T.; Song, Q.; Liu, K.; et al. Nanocellulose-assisted construction of multifunctional MXene-based aerogels with engineering biomimetic texture for pressure sensor and compressible electrode. Nanomicro. Lett. 2023, 15, 98.

24. Zhao, J.; Yang, Y.; Yang, C.; et al. A hydrophobic surface enabled salt-blocking 2D Ti3C2 MXene membrane for efficient and stable solar desalination. J. Mater. Chem. A. 2018, 6, 16196-204.

25. Kim, W. B.; Choi, S. H.; Lee, J. S. Quantitative analysis of Ti−O−Si and Ti−O−Ti bonds in Ti−Si binary oxides by the linear combination of XANES. J. Phys. Chem. B. 2000, 104, 8670-8.

26. Liu, R.; Pan, X.; Mao, Z.; et al. Well-cushioned and highly-elastic aerogel for multifunctional intelligent transportation packaging. Chem. Eng. J. 2024, 493, 152660.

27. Ren, J.; Li, Z.; Liu, S.; Xing, Y.; Xie, K. Silica–titania mixed oxides: Si–O–Ti connectivity, coordination of titanium, and surface acidic properties. Catal. Lett. 2008, 124, 185-94.

28. Niu, M.; Wang, H.; Chen, J.; Su, L.; Wu, D.; Navrotsky, A. Structure and energetics of SiOC and SiOC - modified carbon-bonded carbon fiber composites. J. Am. Ceram. Soc. 2017, 100, 3693-702.

29. Lin, W.; Hu, X.; You, X.; et al. Hydrophobic modification of nanocellulose via a two-step silanation method. Polymers 2018, 10, 1035.

30. Wetzelaer, G. A. H.; Blom, P. W. M. Comment on “Enhanced charge selectivity via anodic-C60 layer reduces nonradiative losses in organic solar cells”. ACS. Appl. Mater. Interfaces. 2022, 14, 7523-6.

31. Chen, Y.; Zhang, L.; Yang, Y.; et al. Recent progress on nanocellulose aerogels: preparation, modification, composite fabrication, applications. Adv. Mater. 2021, 33, e2005569.

32. Lipatov, A.; Lu, H.; Alhabeb, M.; et al. , Elastic properties of 2D Ti3C2Tx MXene monolayers and bilayers. Sci. Adv. 2018, 4, eaat0491.

33. Firestein, K. L.; von Treifeldt, J. E.; Kvashnin, D. G.; et al. Young’s modulus and tensile strength of Ti3C2 MXene nanosheets as revealed by in situ TEM probing, AFM nanomechanical mapping, and theoretical calculations. Nano. Lett. 2020, 20, 5900-8.

34. Gavezzotti, A. Comparing the strength of covalent bonds, intermolecular hydrogen bonds and other intermolecular interactions for organic molecules: X-ray diffraction data and quantum chemical calculations. New. J. Chem. 2016, 40, 6848-53.

35. Dereka, B.; Yu, Q.; Lewis, N. H. C.; Carpenter, W. B.; Bowman, J. M.; Tokmakoff, A. Crossover from hydrogen to chemical bonding. Science 2021, 371, 160-4.

36. Yu, H.; Xu, K.; Zhang, Z.; Cao, X.; Weng, J.; Wu, J. Oxygen functionalization-induced crossover in the tensile properties of the thinnest 2D Ti2C MXene. J. Mater. Chem. C. 2021, 9, 2416-25.

37. Dai, J.; Wei, C.; Wu, C. Fracture of Ti3C2-TiO2 atomically thin films. Extreme. Mech. Lett. 2024, 71, 102211.

38. McIntosh, B. J.; Márkus, B. G.; Nyáry, A.; Simon, F.; Forró, L.; Beke, D. Surface chemistry-driven oxidation mechanisms in Ti3C2Tx MXenes. Small. Sci. 2025, 5, 2500209.

39. Xie, K.; Wang, J.; Xu, K.; Wei, Z.; Zhang, M.; Zhang, J. In-situ synthesis of fluorine-free MXene/TiO2 composite for high-performance supercapacitor. Arab. J. Chem. 2024, 17, 105551.

40. Zhang, X.; Wang, J.; Jiang, Y.; et al. A 3D crinkled MXene/TiO2 heterostructure with interfacial coupling for ultra-fast and reversible potassium storage. J. Mater. Chem. A. 2024, 12, 7598-604.

41. Lu, X.; Wang, X.; Song, W.; et al. Sustainable lignocellulose bio-based foam with good cushioning performance and thermal insulation for transportation packaging. Ind. Crops. Prod. 2024, 216, 118758.

42. Song, W.; Pan, X.; Wang, X.; et al. Load-bearing structure inspired cellulose-based aerogel with high resilience and water tolerance. Adv. Funct. Mater. 2025, 35, 2415937.

43. Hakozaki, K.; Taniuchi, H.; Takahashi, S. Study on the drop impact acceleration of the radioactive package by new approximation method based on velocity obtained by integrating acceleration. J. Nucl. Sci. Technol. 2023, 60, 401-14.

44. Xia, Y.; Qin, H.; Tong, W.; et al. Ultra-stiff yet super-elastic graphene aerogels by topological cellular hierarchy. Adv. Mater. 2025, 37, e2417462.

45. Qin, B.; Yu, Z. L.; Huang, J.; et al. A petrochemical-free route to superelastic hierarchical cellulose aerogel. Angew. Chem. Int. Ed. Engl. 2023, 62, e202214809.

46. Wang, A.; Gao, Z.; Wu, S.; et al. Superelastic and ultra-soft MXene/CNF aerogel@PDMS-based dual-modal pressure sensor for complex stimuli monitoring. Adv. Sci. 2025, 12, e2502797.

47. Wang, Y.; Deng, Z.; Ou, H.; Feng, S.; Xiang, X. Polydopamine-bridged MXene/graphene composite aerogel for bifunctional applications in supercapacitors and piezoresistive sensors. Chem. Eng. J. 2025, 522, 167528.

48. Marszewski, M.; Dashti, A.; Mcneil, P. E.; et al. Elastic and plastic mechanical properties of nanoparticle-based silica aerogels and xerogels. Microporous. Mesoporous. Mater. 2022, 330, 111569.

49. Niu, Y.; Wang, C.; Huang, B.; et al. Bovine rumen inspired multiple-nested porous aerogel pressure sensor with high sensitivity and wide detection range. Sens. Actuators. B. Chem. 2026, 450, 139291.

50. Cheng, Y.; Li, L.; Liu, Z.; et al. 3D porous MXene aerogel through gas foaming for multifunctional pressure sensor. Research 2022, 2022, 9843268.

51. Chen, T.; Wang, J.; Wu, X.; Li, Z.; Yang, S. Ethanediamine induced self-assembly of long-range ordered GO/MXene composite aerogel and its piezoresistive sensing performances. Appl. Surf. Sci. 2021, 566, 150719.

52. Zhou, Y.; Wang, Y.; Wang, Y.; et al. MXene Ti3C2Tx-derived nitrogen-functionalized heterophase TiO2 homojunctions for room-temperature trace ammonia gas sensing. ACS. Appl. Mater. Interfaces. 2021, 13, 56485-97.

53. Wang, Y.; Zhou, Y.; Wang, Y. Humidity activated ionic-conduction formaldehyde sensing of reduced graphene oxide decorated nitrogen-doped MXene/titanium dioxide composite film. Sens. Actuators. B. Chem. 2020, 323, 128695.

54. Li, Y.; Deng, X.; Tian, J.; Liang, Z.; Cui, H. Ti3C2 MXene-derived Ti3C2/TiO2 nanoflowers for noble-metal-free photocatalytic overall water splitting. Appl. Mater. Today. 2018, 13, 217-27.

55. Dogra, N.; Gasso, S.; Sharma, A.; Sharma, K.; Sharma, S. TiO2 decorated MXene nanosheets for high-performance ammonia gas sensing at room-temperature. Surf. Interfaces. 2024, 48, 104290.

56. Zhang, D.; Jiang, C.; Li, P.; Sun, Y. Layer-by-layer self-assembly of Co3O4 nanorod-decorated MoS2 nanosheet-based nanocomposite toward high-performance ammonia detection. ACS. Appl. Mater. Interfaces. 2017, 9, 6462-71.

57. Kamachi, T.; Tatsumi, T.; Toyao, T.; et al. Linear correlations between adsorption energies and HOMO levels for the adsorption of small molecules on TiO2 surfaces. J. Phys. Chem. C. 2019, 123, 20988-97.

58. Lu, Z.; Kou, Y.; Hua, L.; et al. Porous and flexible aramid nanofiber/MXene nanosheet composite aerogel for rapid ammonia sensing at room temperature. ACS. Appl. Nano. Mater. 2025, 8, 7407-17.

59. Xu, W.; Wu, Q.; Gwon, J.; Choi, J. W. Ice-crystal-templated “accordion-like” cellulose nanofiber/MXene composite aerogels for sensitive wearable pressure sensors. ACS. Sustain. Chem. Eng. 2023, 11, 3208-18.

Soft Science
ISSN 2769-5441 (Online)

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/

Portico

All published articles are preserved here permanently:

https://www.portico.org/publishers/oae/